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Enhanced Electrocatalytic Activity in Gase and Inse Nanosheets: The Role of Surface Oxides

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Date

2020

Journal Title

Journal ISSN

Volume Title

Publisher

Wiley-V C H Verlag GmbH

Open Access Color

Green Open Access

Yes

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Publicly Funded

No
Impulse
Top 1%
Influence
Top 10%
Popularity
Top 1%

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Abstract

Gallium selenide (GaSe) is a van der Waals semiconductor widely used for optoelectronic devices, whose performances are dictated by bulk properties, including band-gap energy. However, recent experimental observations that the exfoliation of GaSe into atomically thin layers enhances performances in electrochemistry and photocatalysis have opened new avenues for its applications in the fields of energy and catalysis. Here, it is demonstrated by surface-science experiments and density functional theory (DFT) that the oxidation of GaSe into Ga2O3, driven by Se vacancies and edge sites created in the exfoliation process, plays a pivotal role in catalytic processes. Specifically, both hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) are energetically unfavorable in pristine GaSe, due to energy barriers of 1.9 and 5.7-7.4 eV, respectively. On the contrary, energy barriers are reduced concurrently with surface oxidation. Especially, the Heyrovsky step (H-ads + H+ + e(-) -> H-2) of HER becomes energetically favorable only in sub-stoichiometric Ga2O2.97(-0.3 eV/H+). It is also discovered that the same mechanisms occur for the case of the parental compound indium selenide (InSe), thus ensuring the validity of the model for the broad class of III-VI layered semiconductors.

Description

Bondino, Federica/0000-0001-6505-9319; D'Olimpio, Gianluca/0000-0002-6367-3945; Paolucci, Valentina/0000-0003-0641-7926; Locatelli, Anea/0000-0002-8072-7343; Nappini, Silvia/0000-0002-4944-5487; Vorochta, Michael/0000-0001-8382-7027; Lozzi, Luca/0000-0002-0150-5727; Genuzio, Francesca/0000-0003-0699-2525;

Keywords

Gallium Selenide (GaSe), Hydrogen Evolution Reaction, Indium Selenide (InSe), Oxidation, Surface Science, oxidation, gallium selenide (GaSe); hydrogen evolution reaction; indium selenide (InSe); oxidation; surface science, gallium selenide (GaSe), indium selenide (InSe), surface science, hydrogen evolution reaction

Fields of Science

02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
50

Source

Advanced Functional Materials

Volume

30

Issue

43

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End Page

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Citations

CrossRef : 40

Scopus : 60

Captures

Mendeley Readers : 41

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