Literature DB >> 28614067

Nano-engineering of p-n CuFeO2-ZnO heterojunction photoanode with improved light absorption and charge collection for photoelectrochemical water oxidation.

Keshab Karmakar1, Ayan Sarkar, Kalyan Mandal, Gobinda Gopal Khan.   

Abstract

The effective utilization of abundant visible solar light for photoelectrochemical n class="Chemical">water splitting is a greenpan> approach for enpan>ergy harvesting, to reduce the enpan>ormous rise of pan> class="Chemical">carbon content in the atmosphere. Here, a novel efficient design strategy for p-n type nano-heterojunction photoanodes is demonstrated, with the goal of improving water splitting efficiency by growing low band gap p-CuFeO2 nanolayers on n-ZnO nanorods by an easy and scalable electrochemical route. The photoconversion efficiency of p-n CuFeO2/ZnO photoanodes is found to be ∼450% higher than that of pristine ZnO nanorod electrodes under visible solar light illumination (λ > 420 nm, intensity 10 mW cm-2). The p-n CuFeO2/ZnO nano-engineering not only boosts the visible light absorption but also resolves limitations regarding effective charge carrier separation and transportation due to interfacial band alignment. This photoanode also shows remarkably enhanced stability, where the formation of p-n nano-heterojunction enhances the easy migration of holes to the electrode/electrolyte interface, and of electrons to the counter electrode (Pt) for hydrogen generation. Therefore, this work demonstrates that p-n nano-engineering is a potential strategy to design light-harvesting electrodes for water splitting and clean energy generation.

Entities:  

Year:  2017        PMID: 28614067     DOI: 10.1088/1361-6528/aa7998

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.874


  1 in total

1.  n-n ZnO-Ag2CrO4 heterojunction photoelectrodes with enhanced visible-light photoelectrochemical properties.

Authors:  Mahsa Pirhashemi; Sami Elhag; Rania E Adam; Aziz Habibi-Yangjeh; Xianjie Liu; Magnus Willander; Omer Nur
Journal:  RSC Adv       Date:  2019-03-11       Impact factor: 3.361

  1 in total

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