Light‐Induced Adaptive Structural Evolution in Gallium Nitride Nanowire/Nickel Hydroxide Symbiotic System in Photoelectrochemical Environment

Author:

Kang Yang1,Wang Danhao2,Wang Anyang3,Chen Wei1,Liu Boyang4,Fang Shi1,Liu Xin1,Li Liuan1,Ge Binghui5,Liu Zhenghui4,Zuo Chengjie1,Fu Lan6,Guo Yuzheng3,Liang Kang7,Liu Sheng7,Sun Haiding1

Affiliation:

1. School of Microelectronics University of Science and Technology of China Hefei Anhui 230026 China

2. Department of Electrical Engineering and Computer Science University of Michigan Ann Arbor MI 48109 USA

3. School of Electrical Engineering and Automation Wuhan University Wuhan Hubei 430072 China

4. Platform for Characterization and Test Suzhou Institute of Nano‐Tech and Nano‐Bionics Chinese Academy of Sciences (CAS) Suzhou Jiangsu 215123 China

5. Information Materials and Intelligent Sensing Laboratory of Anhui Province Institute of Physical Science and Information Technology Anhui University Hefei Anhui 230029 China

6. Department of Electronic Materials Engineering Research School of Physics and Engineering The Australian National University Canberra ACT 2601 Australia

7. The Institute of Technological Sciences Wuhan University Wuhan Hubei 430072 China

Abstract

AbstractThe adaptability of living organisms to dynamically adjust their biological behavior in response to fluctuating surroundings is a prerequisite for their evolutionary success. However, artificially‐synthesized materials, especially semiconductors, have not been able to replicate such adaptability due to their inherent physical rigidity and lack of intrinsic structural responsiveness to external stimuli. Herein, an adaptive structural evolution in group‐III‐nitride semiconductors is demonstrated by constructing an AlGaN‐nanowire/Ni(OH)2 symbiotic‐system, resulting in self‐improved optoelectronic characteristics. The mutualistic interplay between AlGaN and Ni(OH)2 nanostructure leads to the adaptive evolution of crystalline‐facets of AlGaN‐nanowires, along with self‐optimization of Ni(OH)2 nanocrystals upon photon‐irradiation during its operation. Specifically, the nanowire‐surfaces dynamically evolve during Ni(OH)2 photo‐deposition, removing the (000) plane while exposing the (10), which facilitates carrier transport at AlGaN/Ni(OH)2 interface. Moreover, light‐induced electrons generated from AlGaN‐nanowires then partially reduce Ni2+ ions in the Ni(OH)2 nanostructure into Ni0 nanometals, which further boosts the proton reduction thermodynamics, generating an unusual self‐improving photocurrent from −59.6 to −101.6 µA cm−2. Such a “symbiotic system,” which is barely observed in conventional semiconductors, provides a promising avenue toward realizing smart adaptive semiconductors that are capable of dynamic structural evolution to fully unleash their potential for emerging optoelectronic and artificial‐photocatalysis applications.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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