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Nanosphere Lithography: A Versatile Approach to Develop Transparent Conductive Films for Optoelectronic Applications

  • Tengfei Qiu
  • , Eser Metin Akinoglu
  • , Bin Luo
  • , Muxina Konarova
  • , Jung Ho Yun
  • , Ian R. Gentle
  • , Lianzhou Wang

Research output: Contribution to journalReview articlepeer-review

122 Citations (Scopus)

Abstract

Transparent conductive films (TCFs) are irreplaceable components in most optoelectronic applications such as solar cells, organic light-emitting diodes, sensors, smart windows, and bioelectronics. The shortcomings of existing traditional transparent conductors demand the development of new material systems that are both transparent and electrically conductive, with variable functionality to meet the requirements of new generation optoelectronic devices. In this respect, TCFs with periodic or irregular nanomesh structures have recently emerged as promising candidates, which possess superior mechanical properties in comparison with conventional metal oxide TCFs. Among the methods for nanomesh TCFs fabrication, nanosphere lithography (NSL) has proven to be a versatile platform, with which a wide range of morphologically distinct nanomesh TCFs have been demonstrated. These materials are not only functionally diverse, but also have advantages in terms of device compatibility. This review provides a comprehensive description of the NSL process and its most relevant derivatives to fabricate nanomesh TCFs. The structure-property relationships of these materials are elaborated and an overview of their application in different technologies across disciplines related to optoelectronics is given. It is concluded with a perspective on current shortcomings and future directions to further advance the field.

Original languageEnglish
Article number2103842
JournalAdvanced Materials
Volume34
Issue number19
DOIs
Publication statusPublished - 12 May 2022

Bibliographical note

Publisher Copyright:
© 2022 The Authors. Advanced Materials published by Wiley-VCH GmbH.

Keywords

  • flexible optoelectronics
  • flexible transparent conductive films
  • nanomesh electrodes
  • nanosphere lithography
  • sensors

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