Show simple item record

Thin- Metal- Film- Based Transparent Conductors: Material Preparation, Optical Design, and Device Applications

dc.contributor.authorZhang, Cheng
dc.contributor.authorJi, Chengang
dc.contributor.authorPark, Yong‐bum
dc.contributor.authorGuo, L. Jay
dc.date.accessioned2021-03-02T21:47:02Z
dc.date.available2022-03-02 16:46:58en
dc.date.available2021-03-02T21:47:02Z
dc.date.issued2021-02
dc.identifier.citationZhang, Cheng; Ji, Chengang; Park, Yong‐bum ; Guo, L. Jay (2021). "Thin- Metal- Film- Based Transparent Conductors: Material Preparation, Optical Design, and Device Applications." Advanced Optical Materials 9(3): n/a-n/a.
dc.identifier.issn2195-1071
dc.identifier.issn2195-1071
dc.identifier.urihttps://hdl.handle.net/2027.42/166421
dc.description.abstractTransparent conductors are essential elements in an array of optoelectronic devices. The most commonly used transparent conductor - indium tin oxide (ITO) suffers from issues including poor mechanical flexibility, rising cost, and the need for annealing to achieve high conductivity. Consequently, there has been intensive research effort in developing ITO- free transparent conductors over the recent years. This article gives a comprehensive review on the development of an important ITO- free transparent conductor, that is based on thin metal films. It starts with the background knowledge of material selection for thin- metal- film- based transparent conductors and then surveys various techniques to fabricate high- quality thin metal films. Then, it introduces the spectroscopic ellipsometry method for characterizing thin metal films with high accuracy, and discusses the optical design procedure for optimizing transmittance through thin- metal- film- based conductors. The review also summarizes diverse applications of thin- metal- film- based transparent conductors, ranging from solar cells and organic light emitting diodes, to optical spectrum filters, low- emissivity windows, and transparent electromagnetic interference coatings.This review summarizes the recent development of thin- metal- film- based transparent conductors. It starts with the general guidelines of material selection, and then surveys various techniques for preparing and characterizing high- quality ultrathin metal films. Finally, it discusses relevant optical design procedures for maximizing the conductor’s transmittance as well as classical and emerging applications of thin- metal- film- based transparent conductors.
dc.publisherWiley Periodicals, Inc.
dc.publisherSpringer US
dc.subject.otherorganic optoelectronic devices
dc.subject.othertransparent conductors
dc.subject.otherspectroscopic ellipsometry
dc.subject.otherultrathin metal films
dc.subject.otherlow- E coating
dc.subject.otherITO- free electrodes
dc.subject.otherEMI shielding
dc.titleThin- Metal- Film- Based Transparent Conductors: Material Preparation, Optical Design, and Device Applications
dc.typeArticle
dc.rights.robotsIndexNoFollow
dc.subject.hlbsecondlevelMaterials Science and Engineering
dc.subject.hlbtoplevelEngineering
dc.description.peerreviewedPeer Reviewed
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/166421/1/adom202001298.pdf
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/166421/2/adom202001298_am.pdf
dc.identifier.doi10.1002/adom.202001298
dc.identifier.sourceAdvanced Optical Materials
dc.identifier.citedreferenceR. E. Triambulo, J. H. Kim, M. Y. Na, H. J. Chang, J. W. Park, Appl. Phys. Lett. 2013, 102, 241913.
dc.identifier.citedreferenceM. Xu, J. Feng, Z.- J. Fan, X.- L. Ou, Z.- Y. Zhang, H. Y. Wang, H.- B. Sun, Sol. Energy Mater. Sol. Cells 2017, 169, 8.
dc.identifier.citedreferenceJ. Zhao, K. O. Brinkmann, T. Hu, N. Pourdavoud, T. Becker, T. Gahlmann, R. Heiderhoff, A. Polywka, P. Görrn, Y. Chen, B. Cheng, T. Riedl, Adv. Energy Mater. 2017, 7, 1602599.
dc.identifier.citedreferenceX. L. Ou, M. Xu, J. Feng, H. B. Sun, Sol. Energy Mater. Sol. Cells 2016, 157, 660.
dc.identifier.citedreferenceE. D. Gaspera, Y. Peng, Q. Hou, L. Spiccia, U. Bach, J. J. Jasieniak, Y.- B. Cheng, Nano Energy 2015, 13, 249.
dc.identifier.citedreferenceM. A. Green, S. Pillai, Nat. Photonics 2012, 6, 130.
dc.identifier.citedreferenceH. A. Atwater, A. Polman, Nat. Mater. 2010, 9, 205.
dc.identifier.citedreferenceL. Müller- Meskamp, Y. H. Kim, T. Roch, S. Hofmann, R. Scholz, S. Eckardt, K. Leo, A. F. Lasagni, Adv. Mater. 2012, 24, 906.
dc.identifier.citedreferenceX. Li, W. C. H. Choy, L. Huo, F. Xie, W. E. I. Sha, B. Ding, X. Guo, Y. Li, J. Hou, J. You, Y. Yang, Adv. Mater. 2012, 24, 3046.
dc.identifier.citedreferenceQ. Gan, F. J. Bartoli, Z. H. Kafafi, Adv. Mater. 2013, 25, 2385.
dc.identifier.citedreferenceH. W. Chen, J. H. Lee, B. Y. Lin, S. Chen, S. T. Wu, Light: Sci. Appl. 2018, 7, 17168.
dc.identifier.citedreferenceS. J. Zou, Y. Shen, F. M. Xie, J. D. Chen, Y. Q. Li, J. X. Tang, Mater. Chem. Front. 2020, 4, 788.
dc.identifier.citedreferenceS. Choi, C. M. Kang, C. W. Byun, H. Cho, B. H. Kwon, J. H. Han, J. H. Yang, J. W. Shin, C. S. Hwang, N. S. Cho, K. M. Lee, H.- O. Kim, E. Kim, S. Yoo, H. Lee, Nat. Commun. 2020, 11, 2732.
dc.identifier.citedreferenceF. So, J. Kido, P. Burrows, MRS Bull. 2008, 33, 663.
dc.identifier.citedreferenceS. R. Forrest, Nature 2004, 428, 911.
dc.identifier.citedreferenceB. W. D’Andrade, S. R. Forrest, Adv. Mater. 2004, 16, 1585.
dc.identifier.citedreferenceT. Yokota, P. Zalar, M. Kaltenbrunner, H. Jinno, N. Matsuhisa, H. Kitanosako, Y. Tachibana, W. Yukita, M. Koizumi, T. Someya, Sci. Adv. 2016, 2, e1501856.
dc.identifier.citedreferenceY. Lee, J. Y. Oh, W. Xu, O. Kim, T. R. Kim, J. Kang, Y. Kim, D. Son, J. B. H. Tok, M. J. Park, Z. Bao, T. W. Lee, Sci. Adv. 2018, 4, eaat7387.
dc.identifier.citedreferenceM. Choi, S. R. Bae, L. Hu, A. T. Hoang, S. Y. Kim, J. H. Ahn, Sci. Adv. 2020, 6, eabb5898.
dc.identifier.citedreferenceM. Choi, Y. J. Park, B. K. Sharma, S. R. Bae, S. Y. Kim, J. H. Ahn, Sci. Adv. 2018, 4, eaas8721.
dc.identifier.citedreferenceD. Zhang, T. Huang, L. Duan, Adv. Mater. 2020, 32, 1902391.
dc.identifier.citedreferenceS. Ding, J. Jiu, Y. Gao, Y. Tian, T. Araki, T. Sugahara, S. Nagao, M. Nogi, H. Koga, K. Suganuma, H. Uchida, ACS Appl. Mater. Interfaces 2016, 8, 6190.
dc.identifier.citedreferenceT. H. Han, Y. Lee, M. R. Choi, S. H. Woo, S. H. Bae, B. H. Hong, J. H. Ahn, T. W. Lee, Nat. Photonics 2012, 6, 105.
dc.identifier.citedreferenceQ. He, S. Wu, S. Gao, X. Cao, Z. Yin, H. Li, P. Chen, H. Zhang, ACS Nano 2011, 5, 5038.
dc.identifier.citedreferenceY. Xia, K. Sun, J. Ouyang, Adv. Mater. 2012, 24, 2436.
dc.identifier.citedreferenceP. Hojati- Talemi, C. Bächler, M. Fabretto, P. Murphy, D. Evans, ACS Appl. Mater. Interfaces 2013, 5, 11654.
dc.identifier.citedreferenceS. Cheylan, D. S. Ghosh, D. Krautz, T. L. Chen, V. Pruneri, Org. Electron. 2011, 12, 818.
dc.identifier.citedreferenceW. Brütting, J. Frischeisen, T. D. Schmidt, B. J. Scholz, C. Mayr, Phys. Status Solidi A 2013, 210, 44.
dc.identifier.citedreferenceS. Mladenovski, K. Neyts, D. Pavicic, A. Werner, C. Rothe, Opt. Express 2009, 17, 7562.
dc.identifier.citedreferenceT. W. Koh, J. M. Choi, S. Lee, S. Yoo, Adv. Mater. 2010, 22, 1849.
dc.identifier.citedreferenceY. R. Do, Y. C. Kim, Y. W. Song, C. O. Cho, H. Jeon, Y. J. Lee, S. H. Kim, Y. H. Lee, Adv. Mater. 2003, 15, 1214.
dc.identifier.citedreferenceY. Qu, M. Slootsky, S. R. Forrest, Nat. Photonics 2015, 9, 758.
dc.identifier.citedreferenceH. W. Chang, J. Lee, S. Hofmann, Y. H. Kim, L. Müller- Meskamp, B. Lüssem, C. C. Wu, K. Leo, M. C. Gather, J. Appl. Phys. 2013, 113, 204502.
dc.identifier.citedreferenceX. Yang, K. Dev, J. Wang, E. Mutlugun, C. Dang, Y. Zhao, S. Liu, Y. Tang, S. T. Tan, X. W. Sun, H. V. Demir, Adv. Funct. Mater. 2014, 24, 5977.
dc.identifier.citedreferenceW. H. Koo, S. M. Jeong, F. Araoka, K. Ishikawa, S. Nishimura, T. Toyooka, H. Takezoe, Nat. Photonics 2010, 4, 222.
dc.identifier.citedreferenceM. Thomschke, S. Reineke, B. Lüssem, K. Leo, Nano Lett. 2012, 12, 424.
dc.identifier.citedreferenceT. W. Koh, J. A. Spechler, K. M. Lee, C. B. Arnold, B. P. Rand, ACS Photonics 2015, 2, 1366.
dc.identifier.citedreferenceL. H. Xu, Q. D. Ou, Y. Q. Li, Y. B. Zhang, X. D. Zhao, H. Y. Xiang, J. D. Chen, L. Zhou, S. T. Lee, J. X. Tang, ACS Nano 2016, 10, 1625.
dc.identifier.citedreferenceZ. B. Wang, M. G. Helander, J. Qiu, D. P. Puzzo, M. T. Greiner, Z. M. Hudson, S. Wang, Z. W. Liu, Z. H. Lu, Nat. Photonics 2011, 5, 753.
dc.identifier.citedreferenceS. Lenk, T. Schwab, S. Schubert, L. Müller- Meskamp, K. Leo, M. C. Gather, S. Reineke, Appl. Phys. Lett. 2015, 107, 163302.
dc.identifier.citedreferenceJ. Liang, X. Guo, L. Song, J. Lin, Y. Hu, N. Zhang, X. Liu, Appl. Phys. Lett. 2017, 111, 213301.
dc.identifier.citedreferenceZ. Li, S. Butun, K. Aydin, ACS Photonics 2015, 2, 183.
dc.identifier.citedreferenceY. T. Yoon, S. S. Lee, Opt. Express 2010, 18, 5344.
dc.identifier.citedreferenceC. S. Park, V. R. Shrestha, S. S. Lee, E. S. Kim, D. Y. Choi, Sci. Rep. 2015, 5, 8467.
dc.identifier.citedreferenceC. S. Park, V. R. Shrestha, S. S. Lee, D. Y. Choi, Sci. Rep. 2016, 6, 25496.
dc.identifier.citedreferenceJ. H. Han, D. Y. Kim, D. Kim, K. C. Choi, Sci. Rep. 2016, 6, 29341.
dc.identifier.citedreferenceC. Ji, S. Acharya, K. Yamada, S. Maldonado, L. J. Guo, ACS Appl. Mater. Interfaces 2019, 11, 29065.
dc.identifier.citedreferenceC. Ji, C. Yang, W. Shen, K.- T. Lee, Y. Zhang, X. Liu, L. J. Guo, Nano Res. 2019, 12, 543.
dc.identifier.citedreferenceC. Ji, K. T. Lee, T. Xu, J. Zhou, H. J. Park, L. J. Guo, Adv. Opt. Mater. 2017, 5, 1700368.
dc.identifier.citedreferenceJ. H. Lu, Y. L. Yu, S. R. Chuang, C. H. Yeh, C. P. Chen, J. Phys. Chem. C 2016, 120, 4233.
dc.identifier.citedreferenceJ. H. Lu, Y. H. Lin, B. H. Jiang, C. H. Yeh, J. C. Kao, C. P. Chen, Adv. Funct. Mater. 2017, 28, 1703398.
dc.identifier.citedreferenceY. H. Chen, C. W. Chen, Z. Y. Huang, W. C. Lin, L. Y. Lin, F. Lin, K. T. Wong, H. W. Lin, Adv. Mater. 2014, 26, 1129.
dc.identifier.citedreferenceY. Li, C. Ji, Y. Qu, X. Huang, S. Hou, C.- Z. Li, L.- S. Liao, L. J. Guo, S. R. Forrest, Adv. Mater. 2019, 31, 1903173.
dc.identifier.citedreferenceQ. Tai, F. Yan, Adv. Mater. 2017, 29, 1700192.
dc.identifier.citedreferenceJ. H. Han, D. Kim, T.- W. Lee, E. G. Jeong, H. S. Lee, K. C. Choi, ACS Photonics 2018, 5, 1891.
dc.identifier.citedreferenceA. A. F. Husain, W. Z. W. Hasan, S. Shafie, M. N. Hamidon, S. S. Pandey, Renewable Sustainable Energy Rev. 2018, 94, 779.
dc.identifier.citedreferenceJ. Sun, J. J. Jasieniak, J. Phys. D: Appl. Phys. 2017, 50, 093001.
dc.identifier.citedreferenceJ. Y. Lee, K. T. Lee, S. Seo, L. J. Guo, Sci. Rep. 2014, 4, 4192.
dc.identifier.citedreferenceJ. Lee, S. Hofmann, M. Thomschke, M. Furno, Y. H. Kim, B. Lüssem, K. Leo, Appl. Phys. Lett. 2011, 99, 073303.
dc.identifier.citedreferenceJ. Lee, H. Cho, T.- W. Koh, C. Yun, S. Hofmann, J. H. Lee, Y. H. Kim, B. Lüssem, J.- I. Lee, K. Leo, M. C. Gather, S. Yoo, Opt. Express 2013, 21, 28040.
dc.identifier.citedreferenceW. H. Choi, H. L. Tam, D. Ma, F. Zhu, Opt. Express 2015, 23, A471.
dc.identifier.citedreferenceI. Lee, S. Kim, J. Y. Park, S. Kim, H. W. Cho, J. Ham, S. Gim, K. Kim, K. Hong, J. Lee, IEEE Photonics J. 2018, 10, 1.
dc.identifier.citedreferenceS. S. Kanu, R. Binions, Proc. R. Soc. A 2010, 466, 19.
dc.identifier.citedreferenceG.- L. Chen, US7826704B2, 2010.
dc.identifier.citedreferenceT. Gao, B. P. Jelle, Transl. Mater. Res. 2017, 4, 015001.
dc.identifier.citedreferenceK. W. Hartig, S. L. Larson, P. J. Lingle, US5557462A, 1996.
dc.identifier.citedreferenceR. J. Martín- Palma, R. Gago, M. Vinnichenko, J. M. Martínez- Duart, J. Phys. D: Appl. Phys. 2004, 37, 1554.
dc.identifier.citedreferenceE. Hagen, H. Rubens, Ann. Phys. 1903, 316, 873.
dc.identifier.citedreferenceR. E. Hummel, Electronic Properties of Materials, Springer, New York, NY 2011.
dc.identifier.citedreferenceL. Kheifets, A. A. Afifi, R. Shimkhada, Environ. Health Perspect. 2006, 114, 1532.
dc.identifier.citedreferenceS. Szmigielski, Sci. Total Environ. 1996, 180, 9.
dc.identifier.citedreferenceF. Shahzad, M. Alhabeb, C. B. Hatter, B. Anasori, S. M. Hong, C. M. Koo, Y. Gogotsi, Science 2016, 353, 1137.
dc.identifier.citedreferenceO. Balci, E. O. Polat, N. Kakenov, C. Kocabas, Nat. Commun. 2015, 6, 6628.
dc.identifier.citedreferenceZ. Zeng, H. Jin, M. Chen, W. Li, L. Zhou, Z. Zhang, Adv. Funct. Mater. 2016, 26, 303.
dc.identifier.citedreferenceS. K. Hong, K. Y. Kim, T. Y. Kim, J. H. Kim, S. W. Park, J. H. Kim, B. J. Cho, Nanotechnology 2012, 23, 455704.
dc.identifier.citedreferenceS. Kim, J. S. Oh, M. G. Kim, W. Jang, M. Wang, Y. Kim, H. W. Seo, Y. C. Kim, J. H. Lee, Y. Lee, J. D. Nam, ACS Appl. Mater. Interfaces 2014, 6, 17647.
dc.identifier.citedreferenceY. Wu, Z. Wang, X. Liu, X. Shen, Q. Zheng, Q. Xue, J. K. Kim, ACS Appl. Mater. Interfaces 2017, 9, 9059.
dc.identifier.citedreferenceW. Wang, Q. Zhou, K. Ni, H. Lin, Opt. Mater. Express 2018, 8, 3485.
dc.identifier.citedreferenceM. Hu, J. Gao, Y. Dong, K. Li, G. Shan, S. Yang, R. K.- Y. Li, Langmuir 2012, 28, 7101.
dc.identifier.citedreferenceJ. Gu, S. Hu, H. Ji, H. Feng, W. Zhao, J. Wei, M. Li, Nanotechnology 2020, 31, 185303.
dc.identifier.citedreferenceH. Wang, Y. Zhang, C. Ji, C. Zhang, D. Liu, Z. Zhang, Z. Lu, J. Tan, L. J. Guo, Adv. Sci. 2019, 6, 1901320.
dc.identifier.citedreferenceX. W. Sun, D. W. Zhao, L. Ke, A. K. K. Kyaw, G. Q. Lo, D. L. Kwong, Appl. Phys. Lett. 2010, 97, 053303.
dc.identifier.citedreferenceD. W. Zhao, P. Liu, X. W. Sun, S. T. Tan, L. Ke, A. K. K. Kyaw, Appl. Phys. Lett. 2009, 95, 153304.
dc.identifier.citedreferenceA. J. Heeger, Adv. Mater. 2014, 26, 10.
dc.identifier.citedreferenceC. E. Small, S. Chen, J. Subbiah, C. M. Amb, S. W. Tsang, T. H. Lai, J. R. Reynolds, F. So, Nat. Photonics 2012, 6, 115.
dc.identifier.citedreferenceY. Li, G. Xu, C. Cui, Y. Li, Adv. Energy Mater. 2018, 8, 1701791.
dc.identifier.citedreferenceZ. Wang, C. Zhang, R. Gao, D. Chen, S. Tang, J. Zhang, D. Wang, X. Lu, Y. Hao, Sol. Energy Mater. Sol. Cells 2014, 127, 193.
dc.identifier.citedreferenceD. Zhao, C. Chen, C. Wang, M. M. Junda, Z. Song, C. R. Grice, Y. Yu, C. Li, B. Subedi, N. J. Podraza, X. Zhao, G. Fang, R.- G. Xiong, K. Zhu, Y. Yan, Nat. Energy 2018, 3, 1093.
dc.identifier.citedreferenceA. K. Jena, A. Kulkarni, T. Miyasaka, Chem. Rev. 2019, 119, 3036.
dc.identifier.citedreferenceS. Jiang, Y. Sheng, Y. Hu, Y. Rong, A. Mei, H. Han, Front. Optoelectron. 2020, 13, 256.
dc.identifier.citedreferenceY. Rong, Y. Hu, A. Mei, H. Tan, M. I. Saidaminov, S. I. Seok, M. D. McGehee, E. H. Sargent, H. Han, Science 2018, 361, eaat8235.
dc.identifier.citedreferenceJ. P. Correa- Baena, M. Saliba, T. Buonassisi, M. Grätzel, A. Abate, W. Tress, A. Hagfeldt, Science 2017, 358, 739.
dc.identifier.citedreferenceA. Ren, H. Lai, X. Hao, Z. Tang, H. Xu, B. M. F. Yu Jeco, K. Watanabe, L. Wu, J. Zhang, M. Sugiyama, J. Wu, D. Zhao, Joule 2020, 4, 1263.
dc.identifier.citedreferenceM. Morales- Masis, S. De Wolf, R. Woods- Robinson, J. W. Ager, C. Ballif, Adv. Electron. Mater. 2017, 3, 1600529.
dc.identifier.citedreferenceD. S. Ginley, H. Hosono, D. C. Paine, Handbook of Transparent Conductors, Springer US, New York 2010.
dc.identifier.citedreferenceR. G. Gordon, MRS Bull. 2000, 25, 52.
dc.identifier.citedreferenceW. Cao, J. Li, H. Chen, J. Xue, J. Photonics Energy 2014, 4, 040990.
dc.identifier.citedreferenceD. R. Cairns, R. P. Witte II, D. K. Sparacin, S. M. Sachsman, D. C. Paine, G. P. Crawford, R. R. Newton, Appl. Phys. Lett. 2000, 76, 1425.
dc.identifier.citedreferenceM. T. Dang, J. Lefebvre, J. D. Wuest, ACS Sustainable Chem. Eng. 2015, 3, 3373.
dc.identifier.citedreferenceA. M. Alfantazi, R. R. Moskalyk, Miner. Eng. 2003, 16, 687.
dc.identifier.citedreferenceM. Nasr Saleh, G. Lubineau, Sol. Energy Mater. Sol. Cells 2014, 130, 199.
dc.identifier.citedreferenceJ. W. Park, G. Kim, S. H. Lee, E. H. Kim, G. H. Lee, Surf. Coat. Technol. 2010, 205, 915.
dc.identifier.citedreferenceE. H. Kim, C. W. Yang, J. W. Park, J. Appl. Phys. 2011, 109, 043511.
dc.identifier.citedreferenceJ. H. Kim, H. J. Seok, H. J. Seo, T. Y. Seong, J. H. Heo, S. H. Lim, K. J. Ahn, H. K. Kim, Nanoscale 2018, 10, 20587.
dc.identifier.citedreferenceN. Straue, M. Rauscher, M. Dressler, A. Roosen, J. Am. Ceram. Soc. 2012, 95, 684.
dc.identifier.citedreferenceC. Hanmandlu, C. C. Liu, C. Y. Chen, K. M. Boopathi, S. H. Wu, M. Singh, A. Mohapatra, H. W. Lin, Y. C. Chang, Y. C. Chang, C. S. Lai, C. W. Chu, ACS Appl. Mater. Interfaces 2018, 10, 17973.
dc.identifier.citedreferenceP. K. Nayak, S. Mahesh, H. J. Snaith, D. Cahen, Nat. Rev. Mater. 2019, 4, 269.
dc.identifier.citedreferenceT. Leijtens, K. A. Bush, R. Prasanna, M. D. McGehee, Nat. Energy 2018, 3, 828.
dc.identifier.citedreferenceH. J. Snaith, P. Hacke, Nat. Energy 2018, 3, 459.
dc.identifier.citedreferenceZ. Li, T. R. Klein, D. H. Kim, M. Yang, J. J. Berry, M. F. A. M. van Hest, K. Zhu, Nat. Rev. Mater. 2018, 3, 18017.
dc.identifier.citedreferenceH. Yang, Y. Liu, Y. Dou, J. Zhang, Z. Wu, Q. Zhang, Y.- B. Cheng, J. Zhong, Front. Optoelectron. 2020, 13, 272.
dc.identifier.citedreferenceC. Y. Chang, Y. C. Chang, W. K. Huang, W. C. Liao, H. Wang, C. Yeh, B. C. Tsai, Y. C. Huang, C. S. Tsao, J. Mater. Chem. A 2016, 4, 7903.
dc.identifier.citedreferenceD. Singh, R. Tao, G. Lubineau, npj Flexible Electron. 2019, 3, 10.
dc.identifier.citedreferenceJ. Liu, Y. Yi, Y. Zhou, H. Cai, Nanoscale Res. Lett. 2016, 11, 108.
dc.identifier.citedreferenceH. G. Im, S. Jeong, J. Jin, J. Lee, D. Y. Youn, W. T. Koo, S. B. Kang, H. J. Kim, J. Jang, D. Lee, H. K. Kim, I. D. Kim, J. Y. Lee, B. S. Bae, NPG Asia Mater. 2016, 8, e282.
dc.identifier.citedreferenceJ. H. Yoo, Y. Kim, M. K. Han, S. Choi, K. Y. Song, K. C. Chung, J. M. Kwak, J. Kim, ACS Appl. Mater. Interfaces 2015, 7, 15928.
dc.identifier.citedreferenceJ. Lewis, S. Grego, B. Chalamala, E. Vick, D. Temple, Appl. Phys. Lett. 2004, 85, 3450.
dc.identifier.citedreferenceM. Vosgueritchian, D. J. Lipomi, Z. Bao, Adv. Funct. Mater. 2012, 22, 421.
dc.identifier.citedreferenceY. Wang, C. Zhu, R. Pfattner, H. Yan, L. Jin, S. Chen, F. Molina- Lopez, F. Lissel, J. Liu, N. I. Rabiah, Z. Chen, J. W. Chung, C. Linder, M. F. Toney, B. Murmann, Z. Bao, Sci. Adv. 2017, 3, e1602076.
dc.identifier.citedreferenceD. Gupta, M. M. Wienk, R. A. J. Janssen, Adv. Energy Mater. 2013, 3, 782.
dc.identifier.citedreferenceY. Xu, J. Liu, Small 2016, 12, 1400.
dc.identifier.citedreferenceD. S. Hecht, L. Hu, G. Irvin, Adv. Mater. 2011, 23, 1482.
dc.identifier.citedreferenceS. Jiang, P. X. Hou, M. L. Chen, B. W. Wang, D. M. Sun, D. M. Tang, Q. Jin, Q. X. Guo, D. D. Zhang, J. H. Du, K. P. Tai, J. Tan, E. I. Kauppinen, C. Liu, H. M. Cheng, Sci. Adv. 2018, 4, eaap9264.
dc.identifier.citedreferenceY. Wang, S. W. Tong, X. F. Xu, B. Ã zyilmaz, K. P. Loh, Adv. Mater. 2011, 23, 1514.
dc.identifier.citedreferenceM.- G. Kang, H. J. Park, S. H. Ahn, L. J. Guo, Sol. Energy Mater. Sol. Cells 2010, 94, 1179.
dc.identifier.citedreferenceM. G. Kang, T. Xu, H. J. Park, X. Luo, L. J. Guo, Adv. Mater. 2010, 22, 4378.
dc.identifier.citedreferenceM. G. Kang, L. J. Guo, Adv. Mater. 2007, 19, 1391.
dc.identifier.citedreferenceS. Hong, J. Yeo, G. Kim, D. Kim, H. Lee, J. Kwon, H. Lee, P. Lee, S. H. Ko, ACS Nano 2013, 7, 5024.
dc.identifier.citedreferenceJ. H. Park, D. Y. Lee, Y. H. Kim, J. K. Kim, J. H. Lee, J. H. Park, T. W. Lee, J. H. Cho, ACS Appl. Mater. Interfaces 2014, 6, 12380.
dc.identifier.citedreferenceC. Zhang, A. Khan, J. Cai, C. Liang, Y. Liu, J. Deng, S. Huang, G. Li, W. D. Li, ACS Appl. Mater. Interfaces 2018, 10, 21009.
dc.identifier.citedreferenceA. Kumar, C. Zhou, ACS Nano 2010, 4, 11.
dc.identifier.citedreferenceH. Lu, X. Ren, D. Ouyang, W. C. H. Choy, Small 2018, 14, 1703140.
dc.identifier.citedreferenceH. Wu, D. Kong, Z. Ruan, P.- C. Hsu, S. Wang, Z. Yu, T. J. Carney, L. Hu, S. Fan, Y. Cui, Nat. Nanotechnol. 2013, 8, 421.
dc.identifier.citedreferenceJ. Y. Lee, S. T. Connor, Y. Cui, P. Peumans, Nano Lett. 2008, 8, 689.
dc.identifier.citedreferenceC. H. Liu, X. Yu, Nanoscale Res. Lett. 2011, 6, 75.
dc.identifier.citedreferenceC. Zhang, J. Cai, C. Liang, A. Khan, W. D. Li, Adv. Funct. Mater. 2019, 29, 1903123.
dc.identifier.citedreferenceB. Bari, J. Lee, T. Jang, P. Won, S. H. Ko, K. Alamgir, M. Arshad, L. J. Guo, J. Mater. Chem. A 2016, 4, 11365.
dc.identifier.citedreferenceB. Han, Y. Huang, R. Li, Q. Peng, J. Luo, K. Pei, A. Herczynski, K. Kempa, Z. Ren, J. Gao, Nat. Commun. 2014, 5, 5674.
dc.identifier.citedreferenceB. Han, K. Pei, Y. Huang, X. Zhang, Q. Rong, Q. Lin, Y. Guo, T. Sun, C. Guo, D. Carnahan, M. Giersig, Y. Wang, J. Gao, Z. Ren, K. Kempa, Adv. Mater. 2014, 26, 873.
dc.identifier.citedreferenceB. Han, Q. Peng, R. Li, Q. Rong, Y. Ding, E. M. Akinoglu, X. Wu, X. Wang, X. Lu, Q. Wang, G. Zhou, J. M. Liu, Z. Ren, M. Giersig, A. Herczynski, K. Kempa, J. Gao, Nat. Commun. 2016, 7, 12825.
dc.identifier.citedreferenceJ. Gao, Z. Xian, G. Zhou, J. M. Liu, K. Kempa, Adv. Funct. Mater. 2018, 28, 1705023.
dc.identifier.citedreferenceY. G. Bi, Y. F. Liu, X. L. Zhang, D. Yin, W. Q. Wang, J. Feng, H. B. Sun, Adv. Opt. Mater. 2019, 7, 1800778.
dc.identifier.citedreferenceB. O’Connor, C. Haughn, K.- H. An, K. P. Pipe, M. Shtein, Appl. Phys. Lett. 2008, 93, 223304.
dc.identifier.citedreferenceJ. Yun, Adv. Funct. Mater. 2017, 27, 1606641.
dc.identifier.citedreferenceC. Zhang, D. Zhao, D. Gu, H. Kim, T. Ling, Y. K. R. Wu, L. J. Guo, Adv. Mater. 2014, 26, 5696.
dc.identifier.citedreferenceD. S. Ghosh, Ultrathin Metal Transparent Electrodes for the Optoelectronics Industry, Springer International Publishing, Switzerland 2013.
dc.identifier.citedreferenceR. Lemasters, C. Zhang, M. Manjare, W. Zhu, J. Song, S. Urazhdin, H. J. Lezec, A. Agrawal, H. Harutyunyan, ACS Photonics 2019, 6, 2600.
dc.identifier.citedreferenceS. Kosuga, R. Suga, O. Hashimoto, S. Koh, Appl. Phys. Lett. 2017, 110, 233102.
dc.identifier.citedreferenceJ. K. Wassei, R. B. Kaner, Mater. Today 2010, 13, 52.
dc.identifier.citedreferenceF. S. F. Morgenstern, D. Kabra, S. Massip, T. J. K. Brenner, P. E. Lyons, J. N. Coleman, R. H. Friend, Appl. Phys. Lett. 2011, 99, 183307.
dc.identifier.citedreferenceR. A. Serway, J. R. Gordon, Principles of Physics, Saunders College Publishing, Philadelphia, PA, USA 1998.
dc.identifier.citedreferenceElectrical resistivity and conductivity, https://en.wikipedia.org/wiki/Electrical_resistivity_and_conductivity (accessed: November 2020).
dc.identifier.citedreferenceD. Gall, J. Appl. Phys. 2016, 119, 085101.
dc.identifier.citedreferenceK. Fuchs, Math. Proc. Cambridge Philos. Soc. 1938, 34, 100.
dc.identifier.citedreferenceE. H. Sondheimer, Adv. Phys. 1952, 1, 1.
dc.identifier.citedreferenceS. B. Soffer, J. Appl. Phys. 1967, 38, 1710.
dc.identifier.citedreferenceT. Sun, B. Yao, A. P. Warren, K. Barmak, M. F. Toney, R. E. Peale, K. R. Coffey, Phys. Rev. B 2010, 81, 155454.
dc.identifier.citedreferenceM. A. Angadi, J. Mater. Sci. 1985, 20, 761.
dc.identifier.citedreferenceJ. R. Sambles, K. C. Elsom, J. Phys. D: Appl. Phys. 1982, 15, 1459.
dc.identifier.citedreferenceP. Martin, Electrical Transport and Scattering Mechanisms in Thin Silver Films for Thermally Insulating Glazing, Ph.D. Thesis, TU Dresden 2011, http://nbn- resolving.de/urn:nbn:de:bsz:14- qucosa- 70920.
dc.identifier.citedreferenceA. F. Mayadas, M. Shatzkes, Phys. Rev. B 1970, 1, 1382.
dc.identifier.citedreferenceA. F. Mayadas, M. Shatzkes, J. F. Janak, Appl. Phys. Lett. 1969, 14, 345.
dc.identifier.citedreferenceD. Ebner, M. Bauch, T. Dimopoulos, Opt. Express 2017, 25, A240.
dc.identifier.citedreferenceJ. H. Yun, N. Duraisamy, M. M. D. Kumar, J. Kim, Mater. Lett. 2015, 143, 215.
dc.identifier.citedreferenceY. Li, Y. Chen, M. Qiu, H. Yu, X. Zhang, X. W. Sun, R. Chen, Sci. Rep. 2016, 6, 20114.
dc.identifier.citedreferenceS. P. Cho, S. I. Na, S. S. Kim, Sol. Energy Mater. Sol. Cells 2019, 196, 1.
dc.identifier.citedreferenceD. S. Ghosh, L. Martinez, S. Giurgola, P. Vergani, V. Pruneri, Opt. Lett. 2009, 34, 325.
dc.identifier.citedreferenceL. Martínez, D. S. Ghosh, S. Giurgola, P. Vergani, V. Pruneri, Opt. Mater. 2009, 31, 1115.
dc.identifier.citedreferenceD. W. Lynch, W. R. Hunter, in Handbook of Optical Constants of Solids, (Ed: E. D. Palik ), Academic Press, Burlington 1997, pp.   275 - 367.
dc.identifier.citedreferenceI. Lee, J. L. Lee, J. Photonics Energy 2015, 5, 057609.
dc.identifier.citedreferenceD. B. Fraser, H. D. Cook, J. Electrochem. Soc. 1972, 119, 1368.
dc.identifier.citedreferenceG. Haacke, J. Appl. Phys. 1976, 47, 4086.
dc.identifier.citedreferenceP. B. Johnson, R. W. Christy, Phys. Rev. B 1972, 6, 4370.
dc.identifier.citedreferenceN. Kaiser, Appl. Opt. 2002, 41, 3053.
dc.identifier.citedreferenceA. W. Adamson, A. P. Gast, Physical Chemistry of Surfaces, Wiley, New York 1997.
dc.identifier.citedreferenceS. H. Overbury, P. A. Bertrand, G. A. Somorjai, Chem. Rev. 1975, 75, 547.
dc.identifier.citedreferenceR. Sangiorgi, M. L. Muolo, D. Chatain, N. Eustathopoulos, J. Am. Ceram. Soc. 1988, 71, 742.
dc.identifier.citedreferenceC. T. Campbell, Surf. Sci. Rep. 1997, 27, 1.
dc.identifier.citedreferenceH. Han, N. D. Theodore, T. L. Alford, J. Appl. Phys. 2008, 103, 013708.
dc.identifier.citedreferenceH. W. Choi, N. D. Theodore, T. L. Alford, Sol. Energy Mater. Sol. Cells 2013, 117, 446.
dc.identifier.citedreferenceH. M. Lee, Y. J. Lee, I. S. Kim, M. S. Kang, S. B. Heo, Y. S. Kim, D. Kim, Vacuum 2012, 86, 1494.
dc.identifier.citedreferenceT. Dimopoulos, G. Z. Radnoczi, B. Pécz, H. Brückl, Thin Solid Films 2010, 519, 1470.
dc.identifier.citedreferenceD. R. Sahu, S. Y. Lin, J. L. Huang, Thin Solid Films 2008, 516, 4728.
dc.identifier.citedreferenceI. Crupi, S. Boscarino, V. Strano, S. Mirabella, F. Simone, A. Terrasi, Thin Solid Films 2012, 520, 4432.
dc.identifier.citedreferenceS. W. Cho, J. A. Jeong, J. H. Bae, J. M. Moon, K. H. Choi, S. W. Jeong, N. J. Park, J. J. Kim, S. H. Lee, J. W. Kang, M. S. Yi, H. K. Kim, Thin Solid Films 2008, 516, 7881.
dc.identifier.citedreferenceJ. A. Jeong, Y.- S. Park, H. K. Kim, J. Appl. Phys. 2010, 107, 023111.
dc.identifier.citedreferenceH. J. Lee, J. W. Kang, S. H. Hong, S. H. Song, S. J. Park, ACS Appl. Mater. Interfaces 2016, 8, 1565.
dc.identifier.citedreferenceH. K. Park, J. W. Kang, S. I. Na, D. Y. Kim, H. K. Kim, Sol. Energy Mater. Sol. Cells 2009, 93, 1994.
dc.identifier.citedreferenceA. Dhar, T. L. Alford, APL Mater. 2013, 1, 012102.
dc.identifier.citedreferenceD. S. Ghosh, Q. Liu, P. Mantilla- Perez, T. L. Chen, V. Mkhitaryan, M. Huang, S. Garner, J. Martorell, V. Pruneri, Adv. Funct. Mater. 2015, 25, 7309.
dc.identifier.citedreferenceR. A. Maniyara, V. K. Mkhitaryan, T. L. Chen, D. S. Ghosh, V. Pruneri, Nat. Commun. 2016, 7, 13771.
dc.identifier.citedreferenceP. C. Lansåker, J. Backholm, G. A. Niklasson, C. G. Granqvist, Thin Solid Films 2009, 518, 1225.
dc.identifier.citedreferenceW. Yu, L. Shen, F. Meng, Y. Long, S. Ruan, W. Chen, Sol. Energy Mater. Sol. Cells 2012, 100, 226.
dc.identifier.citedreferenceI. P. Lopéz, L. Cattin, D. T. Nguyen, M. Morsli, J. C. Bernède, Thin Solid Films 2012, 520, 6419.
dc.identifier.citedreferenceN. P. Sergeant, A. Hadipour, B. Niesen, D. Cheyns, P. Heremans, P. Peumans, B. P. Rand, Adv. Mater. 2012, 24, 728.
dc.identifier.citedreferenceM. Ghasemi Varnamkhasti, H. R. Fallah, M. Mostajaboddavati, A. Hassanzadeh, Vacuum 2012, 86, 1318.
dc.identifier.citedreferenceS. Schubert, M. Hermenau, J. Meiss, L. Müller- Meskamp, K. Leo, Adv. Funct. Mater. 2012, 22, 4993.
dc.identifier.citedreferenceA. Dhar, T. L. Alford, J. Appl. Phys. 2012, 112, 103113.
dc.identifier.citedreferenceA. T. Barrows, R. Masters, A. J. Pearson, C. Rodenburg, D. G. Lidzey, Sol. Energy Mater. Sol. Cells 2016, 144, 600.
dc.identifier.citedreferenceJ. F. Salinas, H. L. Yip, C. C. Chueh, C. Z. Li, J. L. Maldonado, A. K. Y. Jen, Adv. Mater. 2012, 24, 6362.
dc.identifier.citedreferenceH. Kermani, H. R. Fallah, M. Hajimahmoodzadeh, S. V. Tabatabaei, Appl. Opt. 2013, 52, 780.
dc.identifier.citedreferenceD. Y. Kim, Y. C. Han, H. C. Kim, E. G. Jeong, K. C. Choi, Adv. Funct. Mater. 2015, 25, 7145.
dc.identifier.citedreferenceY. C. Han, M. S. Lim, J. H. Park, K. C. Choi, Org. Electron. 2013, 14, 3437.
dc.identifier.citedreferenceR. H. H. Ko, A. Khalatpour, J. K. D. Clark, N. P. Kherani, APL Mater. 2018, 6, 121112.
dc.identifier.citedreferenceM. Girtan, Sol. Energy Mater. Sol. Cells 2012, 100, 153.
dc.identifier.citedreferenceV. J. Logeeswaran, N. P. Kobayashi, M. S. Islam, W. Wu, P. Chaturvedi, N. X. Fang, S. Y. Wang, R. S. Williams, Nano Lett. 2009, 9, 178.
dc.identifier.citedreferenceW. Chen, K. P. Chen, M. D. Thoreson, A. V. Kildishev, V. M. Shalaev, Appl. Phys. Lett. 2010, 97, 211107.
dc.identifier.citedreferenceC. Cioarec, P. Melpignano, N. Gherardi, R. Clergereaux, C. Villeneuve, Langmuir 2011, 27, 3611.
dc.identifier.citedreferenceE. Jeong, G. Zhao, S. M. Yu, S.- G. Lee, J.- S. Bae, J. Park, J. Rha, G. H. Lee, J. Yun, Appl. Surf. Sci. 2020, 528, 146989.
dc.identifier.citedreferenceH. Liu, B. Wang, E. S. P. Leong, P. Yang, Y. Zong, G. Si, J. Teng, S. A. Maier, ACS Nano 2010, 4, 3139.
dc.identifier.citedreferenceT. Stefaniuk, P. Wróbel, P. Trautman, T. Szoplik, Appl. Opt. 2014, 53, B237.
dc.identifier.citedreferenceP. Melpignano, C. Cioarec, R. Clergereaux, N. Gherardi, C. Villeneuve, L. Datas, Org. Electron. 2010, 11, 1111.
dc.identifier.citedreferenceO. S. Heavens, J. Phys. Radium 1950, 11, 355.
dc.identifier.citedreferenceJ. Meiss, M. K. Riede, K. Leo, J. Appl. Phys. 2009, 105, 063108.
dc.identifier.citedreferenceJ. Meiss, M. K. Riede, K. Leo, Appl. Phys. Lett. 2009, 94, 013303.
dc.identifier.citedreferenceS. Schubert, J. Meiss, L. Müller- Meskamp, K. Leo, Adv. Energy Mater. 2013, 3, 438.
dc.identifier.citedreferenceT. Schwab, S. Schubert, L. Müller- Meskamp, K. Leo, M. C. Gather, Adv. Opt. Mater. 2013, 1, 921.
dc.identifier.citedreferenceN. Formica, D. S. Ghosh, A. Carrilero, T. L. Chen, R. E. Simpson, V. Pruneri, ACS Appl. Mater. Interfaces 2013, 5, 3048.
dc.identifier.citedreferenceC. Zhang, C. Pfeiffer, T. Jang, V. Ray, M. Junda, P. Uprety, N. Podraza, A. Grbic, L. J. Guo, Laser Photonics Rev. 2016, 10, 791.
dc.identifier.citedreferenceC. Pfeiffer, C. Zhang, V. Ray, L. J. Guo, A. Grbic, Phys. Rev. Lett. 2014, 113, 023902.
dc.identifier.citedreferenceG. Kästle, H. G. Boyen, B. Koslowski, A. Plettl, F. Weigl, P. Ziemann, Surf. Sci. 2002, 498, 168.
dc.identifier.citedreferenceD. P. Fromm, A. Sundaramurthy, P. J. Schuck, G. Kino, W. E. Moerner, Nano Lett. 2004, 4, 957.
dc.identifier.citedreferenceJ. Zhang, D. M. Fryauf, M. Garrett, V. J. Logeeswaran, A. Sawabe, M. S. Islam, N. P. Kobayashi, Langmuir 2015, 31, 7852.
dc.identifier.citedreferenceM. Todeschini, A. Bastos da Silva Fanta, F. Jensen, J. B. Wagner, A. Han, ACS Appl. Mater. Interfaces 2017, 9, 37374.
dc.identifier.citedreferenceA. Ciesielski, L. Skowronski, E. Górecka, J. Kierdaszuk, T. Szoplik, Beilstein J. Nanotechnol. 2018, 9, 66.
dc.identifier.citedreferenceP. Wróbel, T. Stefaniuk, M. Trzcinski, A. A. Wronkowska, A. Wronkowski, T. Szoplik, ACS Appl. Mater. Interfaces 2015, 7, 8999.
dc.identifier.citedreferenceA. Poddubny, I. Iorsh, P. Belov, Y. Kivshar, Nat. Photonics 2013, 7, 948.
dc.identifier.citedreferenceP. Shekhar, J. Atkinson, Z. Jacob, Nano Convergence 2014, 1, 14.
dc.identifier.citedreferenceB. Lahiri, R. Dylewicz, R. M. De La Rue, N. P. Johnson, Opt. Express 2010, 18, 11202.
dc.identifier.citedreferenceP. Berini, Adv. Opt. Photonics 2009, 1, 484.
dc.identifier.citedreferenceS. A. Maier, Plasmonics: Fundamentals and Applications, Springer US, New York 2007.
dc.identifier.citedreferenceS. J. Madsen, M. Esfandyarpour, M. L. Brongersma, R. Sinclair, ACS Photonics 2017, 4, 268.
dc.identifier.citedreferenceX. Jiao, J. Goeckeritz, S. Blair, M. Oldham, Plasmonics 2009, 4, 37.
dc.identifier.citedreferenceL. Ke, S. C. Lai, H. Liu, C. K. N. Peh, B. Wang, J. H. Teng, ACS Appl. Mater. Interfaces 2012, 4, 1247.
dc.identifier.citedreferenceH. Aouani, J. Wenger, D. Gérard, H. Rigneault, E. Devaux, T. W. Ebbesen, F. Mahdavi, T. Xu, S. Blair, ACS Nano 2009, 3, 2043.
dc.identifier.citedreferenceC. Zhang, N. Kinsey, L. Chen, C. Ji, M. Xu, M. Ferrera, X. Pan, V. M. Shalaev, A. Boltasseva, L. J. Guo, Adv. Mater. 2017, 29, 1605177.
dc.identifier.citedreferenceD. Gu, C. Zhang, Y. K. Wu, L. J. Guo, ACS Nano 2014, 8, 10343.
dc.identifier.citedreferenceD. Zhao, C. Zhang, H. Kim, L. J. Guo, Adv. Energy Mater. 2015, 5, 1500768.
dc.identifier.citedreferenceC. Zhang, Q. Huang, Q. Cui, C. Ji, Z. Zhang, X. Chen, T. George, S. Zhao, L. J. Guo, ACS Appl. Mater. Interfaces 2019, 11, 27216.
dc.identifier.citedreferenceH. Han, Y. Zoo, J. W. Mayer, T. L. Alford, J. Appl. Phys. 2007, 102, 036101.
dc.identifier.citedreferenceB. Pattier, J. F. Bardeau, M. Edely, A. Gibaud, N. Delorme, Langmuir 2008, 24, 821.
dc.identifier.citedreferenceR. A. Hatton, M. R. Willis, M. A. Chesters, D. Briggs, J. Mater. Chem. 2003, 13, 722.
dc.identifier.citedreferenceA. Kossoy, V. Merk, D. Simakov, K. Leosson, S. Kéna- Cohen, S. A. Maier, Adv. Opt. Mater. 2015, 3, 71.
dc.identifier.citedreferenceL. Leandro, R. Malureanu, N. Rozlosnik, A. Lavrinenko, ACS Appl. Mater. Interfaces 2015, 7, 5797.
dc.identifier.citedreferenceH. M. Stec, R. J. Williams, T. S. Jones, R. A. Hatton, Adv. Funct. Mater. 2011, 21, 1709.
dc.identifier.citedreferenceH. M. Stec, R. A. Hatton, ACS Appl. Mater. Interfaces 2012, 4, 6013.
dc.identifier.citedreferenceJ. Zou, C.- Z. Li, C.- Y. Chang, H. L. Yip, A. K. Y. Jen, Adv. Mater. 2014, 26, 3618.
dc.identifier.citedreferenceY. G. Bi, J. Feng, J. H. Ji, Y. Chen, Y. S. Liu, Y. F. Li, Y. F. Liu, X. L. Zhang, H. B. Sun, Nanoscale 2016, 8, 10010.
dc.identifier.citedreferenceC. C. Chueh, S. C. Chien, H.- L. Yip, J. F. Salinas, C. Z. Li, K. S. Chen, F. C. Chen, W. C. Chen, A. K. Y. Jen, Adv. Energy Mater. 2013, 3, 417.
dc.identifier.citedreferenceH. Kang, S. Jung, S. Jeong, G. Kim, K. Lee, Nat. Commun. 2015, 6, 6503.
dc.identifier.citedreferenceR. C. O’Handley, D. K. Burge, S. N. Jasperson, E. J. Ashley, Surf. Sci. 1975, 50, 407.
dc.identifier.citedreferenceZ. M. Abd El- Fattah, V. Mkhitaryan, J. Brede, L. Fernández, C. Li, Q. Guo, A. Ghosh, A. R. Echarri, D. Naveh, F. Xia, J. E. Ortega, F. J. García de Abajo, ACS Nano 2019, 13, 7771.
dc.identifier.citedreferenceS. H. Lim, H. K. Kim, Sci. Rep. 2020, 10, 8357.
dc.identifier.citedreferenceA. L. D. Vecchio, F. Spaepen, J. Appl. Phys. 2007, 101, 063518.
dc.identifier.citedreferenceK. M. McPeak, S. V. Jayanti, S. J. P. Kress, S. Meyer, S. Iotti, A. Rossinelli, D. J. Norris, ACS Photonics 2015, 2, 326.
dc.identifier.citedreferenceH. Reddy, U. Guler, K. Chaudhuri, A. Dutta, A. V. Kildishev, V. M. Shalaev, A. Boltasseva, ACS Photonics 2017, 4, 1083.
dc.identifier.citedreferenceJ. H. Park, P. Ambwani, M. Manno, N. C. Lindquist, P. Nagpal, S. H. Oh, C. Leighton, D. J. Norris, Adv. Mater. 2012, 24, 3988.
dc.identifier.citedreferenceA. A. Baski, H. Fuchs, Surf. Sci. 1994, 313, 275.
dc.identifier.citedreferenceT. C. Zhang, Z. X. Mei, Y. Guo, Q. K. Xue, X. L. Du, J. Phys. D: Appl. Phys. 2009, 42, 065303.
dc.identifier.citedreferenceW. Wang, M. Song, T. S. Bae, Y. H. Park, Y. C. Kang, S. G. Lee, S. Y. Kim, D. H. Kim, S. Lee, G. Min, G. H. Lee, J. W. Kang, J. Yun, Adv. Funct. Mater. 2014, 24, 1551.
dc.identifier.citedreferenceG. Zhao, W. Wang, T. S. Bae, S. G. Lee, C. Mun, S. Lee, H. Yu, G. H. Lee, M. Song, J. Yun, Nat. Commun. 2015, 6, 8830.
dc.identifier.citedreferenceG. Zhao, W. Shen, E. Jeong, S. G. Lee, S. M. Yu, T. S. Bae, G. H. Lee, S. Z. Han, J. Tang, E. A. Choi, J. Yun, ACS Appl. Mater. Interfaces 2018, 10, 27510.
dc.identifier.citedreferenceG. Zhao, S. M. Kim, S. G. Lee, T. S. Bae, C. Mun, S. Lee, H. Yu, G. H. Lee, H. S. Lee, M. Song, J. Yun, Adv. Funct. Mater. 2016, 26, 4180.
dc.identifier.citedreferenceJ. I. Lee, S. M. Howard, J. J. Kellar, K. N. Han, W. Cross, Metall. Mater. Trans. B 2001, 32, 895.
dc.identifier.citedreferenceT. E. Graedel, J. Electrochem. Soc. 1992, 139, 1963.
dc.identifier.citedreferenceE. Ando, M. Miyazaki, Thin Solid Films 1999, 351, 308.
dc.identifier.citedreferenceE. Ando, S. Suzuki, N. Aomine, M. Miyazaki, M. Tada, Vacuum 2000, 59, 792.
dc.identifier.citedreferenceK. Thürmer, E. D. Williams, J. E. Reutt- Robey, Phys. Rev. B 2003, 68, 155423.
dc.identifier.citedreferenceH. Krishna, N. Shirato, C. Favazza, R. Kalyanaraman, J. Mater. Res. 2011, 26, 154.
dc.identifier.citedreferenceK. Aslan, Z. Leonenko, J. R. Lakowicz, C. D. Geddes, J. Fluoresc. 2005, 15, 643.
dc.identifier.citedreferenceS. Butun, K. Aydin, ACS Photonics 2015, 2, 1652.
dc.identifier.citedreferenceY. Huo, S. W. Fu, Y. L. Chen, C. C. Lee, J. Mater. Sci.: Mater. Electron. 2016, 27, 10382.
dc.identifier.citedreferenceB. Barman, H. Dhasmana, A. Verma, A. Kumar, D. Singh, V. Jain, Energy Environ. 2018, 29, 358.
dc.identifier.citedreferenceY. Wang, Y. Yang, Y. Sun, B. Quan, Y. Li, C. Gu, J. Li, RSC Adv. 2017, 7, 11578.
dc.identifier.citedreferenceY. S. Jung, Y. W. Choi, H. C. Lee, D. W. Lee, Thin Solid Films 2003, 440, 278.
dc.identifier.citedreferenceJ. C. Lin, J. Y. Chan, Mater. Chem. Phys. 1996, 43, 256.
dc.identifier.citedreferenceZ. Wang, X. Cai, Q. Chen, P. K. Chu, Thin Solid Films 2007, 515, 3146.
dc.identifier.citedreferenceG. Leftheriotis, S. Papaefthimiou, P. Yianoulis, Solid State Ionics 2000, 136- 137, 655.
dc.identifier.citedreferenceW. Chen, M. D. Thoreson, S. Ishii, A. V. Kildishev, V. M. Shalaev, Opt. Express 2010, 18, 5124.
dc.identifier.citedreferenceS. W. Chen, C. Y. Bai, C. C. Jain, C. J. Zhan, C. H. Koo, Mater. Trans. 2007, 48, 2230.
dc.identifier.citedreferenceM. Boccas, T. Vucina, C. Araya, E. Vera, C. Ahhee, Thin Solid Films 2006, 502, 275.
dc.identifier.citedreferenceD. K. Burge, H. E. Bennett, E. J. Ashley, Appl. Opt. 1973, 12, 42.
dc.identifier.citedreferenceJ. D. Barrie, P. D. Fuqua, K. A. Folgner, C. T. Chu, Appl. Opt. 2011, 50, C135.
dc.identifier.citedreferenceK. A. Folgner, C. T. Chu, Z. R. Lingley, H. I. Kim, J. M. Yang, J. D. Barrie, Appl. Opt. 2017, 56, C75.
dc.identifier.citedreferenceK. A. Folgner, C.- T. Chu, S. D. Sitzman, S. C. Stuart, Z. R. Lingley, J. D. Barrie, Appl. Opt. 2020, 59, A187.
dc.identifier.citedreferenceR. J. Martín- Palma, J. M. Martínez- Duart, J. Vac. Sci. Technol., A 1999, 17, 3449.
dc.identifier.citedreferenceR. J. Martà n- Palma, L. Vázquez, J. M. Martà nez- Duart, R. Malats, Sol. Energy Mater. Sol. Cells 1998, 53, 55.
dc.identifier.citedreferenceC. T. Chu, P. D. Fuqua, J. D. Barrie, Appl. Opt. 2006, 45, 1583.
dc.identifier.citedreferenceA. Ulman, Chem. Rev. 1996, 96, 1533.
dc.identifier.citedreferenceM. H. Schoenfisch, J. E. Pemberton, J. Am. Chem. Soc. 1998, 120, 4502.
dc.identifier.citedreferenceN. Fishelson, A. Inberg, N. Croitoru, Y. Shacham- Diamand, Microelectron. Eng. 2012, 92, 126.
dc.identifier.citedreferenceM. Evesque, M. Keddam, H. Takenouti, Electrochim. Acta 2004, 49, 2937.
dc.identifier.citedreferenceM. C. Bernard, E. Dauvergne, M. Evesque, M. Keddam, H. Takenouti, Corros. Sci. 2005, 47, 663.
dc.identifier.citedreferenceW. S. Beh, I. T. Kim, D. Qin, Y. Xia, G. M. Whitesides, Adv. Mater. 1999, 11, 1038.
dc.identifier.citedreferenceK. Zilberberg, T. Riedl, J. Mater. Chem. A 2016, 4, 14481.
dc.identifier.citedreferenceS. Kim, J. L. Lee, J. Photonics Energy 2012, 2, 021215.
dc.identifier.citedreferenceJ. Ham, S. Kim, G. H. Jung, W. J. Dong, J. L. Lee, J. Mater. Chem. A 2013, 1, 3076.
dc.identifier.citedreferenceM. Bauch, T. Dimopoulos, Mater. Des. 2016, 104, 37.
dc.identifier.citedreferenceL. Kinner, M. Bauch, R. A. Wibowo, G. Ligorio, E. J. W. List- Kratochvil, T. Dimopoulos, Mater. Des. 2019, 168, 107663.
dc.identifier.citedreferenceC. Guillén, J. Herrero, Thin Solid Films 2011, 520, 1.
dc.identifier.citedreferenceH. Wang, C. Ji, C. Zhang, Y. Zhang, Z. Zhang, Z. Lu, J. Tan, L. J. Guo, ACS Appl. Mater. Interfaces 2019, 11, 11782.
dc.identifier.citedreferenceC. Zhang, H. J. Lezec, W. Zhu, A. Agrawal, in Imaging and Applied Optics 2018, The Optical Society, Orlando, FL 2018, paper ATh2A.4.
dc.identifier.citedreferenceH. A. Macleod, Thin- Film Optical Filters, 3rd ed., CRC Press, Boca Raton, FL 2001.
dc.identifier.citedreferenceK. T. Lee, C. Ji, D. Banerjee, L. J. Guo, Laser Photonics Rev. 2015, 9, 354.
dc.identifier.citedreferenceC. Ji, K. T. Lee, L. J. Guo, Opt. Lett. 2019, 44, 86.
dc.identifier.citedreferenceC. Ji, Z. Zhang, T. Masuda, Y. Kudo, L. J. Guo, Nanoscale Horiz. 2019, 4, 874.
dc.identifier.citedreferenceC. Yang, C. Ji, W. Shen, K.- T. Lee, Y. Zhang, X. Liu, L. J. Guo, ACS Photonics 2016, 3, 590.
dc.identifier.citedreferenceG. K. Dalapati, A. K. Kushwaha, M. Sharma, V. Suresh, S. Shannigrahi, S. Zhuk, S. Masudy- Panah, Prog. Mater. Sci. 2018, 95, 42.
dc.identifier.citedreferenceC. Ji, D. Liu, C. Zhang, L. J. Guo, Nat. Commun. 2020, 11, 3367.
dc.identifier.citedreferenceP. Huo, C. Zhang, W. Zhu, M. Liu, S. Zhang, S. Zhang, L. Chen, H. J. Lezec, A. Agrawal, Y. Lu, T. Xu, Nano Lett. 2020, 20, 2791.
dc.identifier.citedreferenceC. Zhang, S. Divitt, Q. Fan, W. Zhu, A. Agrawal, Y. Lu, T. Xu, H. J. Lezec, Light: Sci. Appl. 2020, 9, 55.
dc.identifier.citedreferenceK. Hong, J. H. Son, S. Kim, B. H. Koo, J.- L. Lee, Chem. Commun. 2012, 48, 10606.
dc.identifier.citedreferenceM. Kaltenbrunner, M. S. White, E. D. GÅ owacki, T. Sekitani, T. Someya, N. S. Sariciftci, S. Bauer, Nat. Commun. 2012, 3, 770.
dc.identifier.citedreferenceG. Li, R. Zhu, Y. Yang, Nat. Photonics 2012, 6, 153.
dc.identifier.citedreferenceF. C. Krebs, Sol. Energy Mater. Sol. Cells 2009, 93, 1636.
dc.identifier.citedreferenceC. J. Brabec, S. Gowrisanker, J. J. M. Halls, D. Laird, S. Jia, S. P. Williams, Adv. Mater. 2010, 22, 3839.
dc.working.doiNOen
dc.owningcollnameInterdisciplinary and Peer-Reviewed


Files in this item

Show simple item record

Remediation of Harmful Language

The University of Michigan Library aims to describe its collections in a way that respects the people and communities who create, use, and are represented in them. We encourage you to Contact Us anonymously if you encounter harmful or problematic language in catalog records or finding aids. More information about our policies and practices is available at Remediation of Harmful Language.

Accessibility

If you are unable to use this file in its current format, please select the Contact Us link and we can modify it to make it more accessible to you.