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Balance between Fe IV -Ni IV synergy and Lattice Oxygen Contribution for Accelerating Water Oxidation.

Authors :
Jing C
Li L
Chin YY
Pao CW
Huang WH
Liu M
Zhou J
Yuan T
Zhou X
Wang Y
Chen CT
Li DW
Wang JQ
Hu Z
Zhang L
Source :
ACS nano [ACS Nano] 2024 Jun 04; Vol. 18 (22), pp. 14496-14506. Date of Electronic Publication: 2024 May 21.
Publication Year :
2024

Abstract

Hydrogen obtained from electrochemical water splitting is the most promising clean energy carrier, which is hindered by the sluggish kinetics of the oxygen evolution reaction (OER). Thus, the development of an efficient OER electrocatalyst using nonprecious 3d transition elements is desirable. Multielement synergistic effect and lattice oxygen oxidation are two well-known mechanisms to enhance the OER activity of catalysts. The latter is generally related to the high valence state of 3d transition elements leading to structural destabilization under the OER condition. We have found that Al doping in nanosheet Ni-Fe hydroxide exhibits 2-fold advantage: (1) a strong enhanced OER activity from 277 mV to 238 mV at 10 mA cm <superscript>-2</superscript> as the Ni valence state increases from Ni <superscript>3.58+</superscript> to Ni <superscript>3.79+</superscript> observed from in situ X-ray absorption spectra. (2) Operational stability is strengthened, while weakness is expected since the increased Ni <superscript>IV</superscript> content with 3d <superscript>8</superscript> L <superscript>2</superscript> (L denotes O 2p hole) would lead to structural instability. This contradiction is attributed to a reduced lattice oxygen contribution to the OER upon Al doping, as verified through in situ Raman spectroscopy, while the enhanced OER activity is interpreted as an enormous gain in exchange energy of Fe <superscript>IV</superscript> -Ni <superscript>IV</superscript> , facilitated by their intersite hopping. This study reveals a mechanism of Fe-Ni synergy effect to enhance OER activity and simultaneously to strengthen operational stability by suppressing the contribution of lattice oxygen.

Details

Language :
English
ISSN :
1936-086X
Volume :
18
Issue :
22
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
38771969
Full Text :
https://doi.org/10.1021/acsnano.4c01718