Literature DB >> 28463486

Scalable Indium Phosphide Thin-Film Nanophotonics Platform for Photovoltaic and Photoelectrochemical Devices.

Qingfeng Lin1, Debarghya Sarkar1, Yuanjing Lin2, Matthew Yeung1, Louis Blankemeier1, Jubin Hazra1, Wei Wang1, Shanyuan Niu3, Jayakanth Ravichandran3, Zhiyong Fan2, Rehan Kapadia1.   

Abstract

Recent developments in nanophotonics have provided a clear roadmap for improving the efficiency of photonic devices through control over absorption and emission of devices. These advances could prove transformative for a wide variety of devices, such as photovoltaics, photoelectrochemical devices, photodetectors, and light-emitting diodes. However, it is often challenging to physically create the nanophotonic designs required to engineer the optical properties of devices. Here, we present a platform based on crystalline indium phosphide that enables thin-film nanophotonic structures with physical morphologies that are impossible to achieve through conventional state-of-the-art material growth techniques. Here, nanostructured InP thin films have been demonstrated on non-epitaxial alumina inverted nanocone (i-cone) substrates via a low-cost and scalable thin-film vapor-liquid-solid growth technique. In this process, indium films are first evaporated onto the i-cone structures in the desired morphology, followed by a high-temperature step that causes a phase transformation of the indium into indium phosphide, preserving the original morphology of the deposited indium. Through this approach, a wide variety of nanostructured film morphologies are accessible using only control over evaporation process variables. Critically, the as-grown nanotextured InP thin films demonstrate excellent optoelectronic properties, suggesting this platform is promising for future high-performance nanophotonic devices.

Entities:  

Keywords:  indium phosphide; low-cost and scalable; nanophotonics; photonic devices; thin film

Year:  2017        PMID: 28463486     DOI: 10.1021/acsnano.7b02124

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  A Novel Nanocone Cluster Microstructure with Anti-reflection and Superhydrophobic Properties for Photovoltaic Devices.

Authors:  Jing Ma; Yuanfei Ai; Lei Kang; Wen Liu; Zhe Ma; Peishuai Song; Yongqiang Zhao; Fuhua Yang; Xiaodong Wang
Journal:  Nanoscale Res Lett       Date:  2018-10-23       Impact factor: 4.703

  1 in total

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