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Lee, Geunsik
Computational Research on Electronic Structure and Transport in Condensed Materials
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High-performance and stable NH3 production using a TiO2-protected Si photocathode and patterned Au loading

Author(s)
Tayyebi, AhmadJuyeon, JeongMoghaddam, Mahsa HaddadiZafari, MohammadGo, Hyun-JuLee, DukhyungTayebi, MeysamYang, Hwa-YoungShin, Changhwandel Carmen Gimenez-Lopez, MariaLee, GeunsikKim, Dai SikJang, Ji-Wook
Issued Date
2025-01
DOI
10.1039/d4ey00282b
URI
https://scholarworks.unist.ac.kr/handle/201301/88833
Citation
EES Catalysis, v.3, no.3, pp.446 - 458
Abstract
Crystalline silicon (c-Si) is a promising material for photoelectrochemical (PEC) ammonia (NH3) production from nitrate (NO3−) reduction owing to its appropriate band gap and optimal charge-transport properties. However, c-Si is not stable in aqueous solutions, causing the detachment of catalysts from the c-Si photoelectrode and resulting in a dramatic decrease in the performance. Furthermore, electrocatalysts on c-Si block light, therby reducing the PEC NH3-production efficiency. Herein, we stabilized and increased the efficiency of the c-Si photocathode by TiO2 deposition and loaded an optimized amount of Au using an e-beam patterning, respectively. We found that TiO2 not only protects the c-Si photoelectrode from the electrolyte but also promotes strong bonding between Au and the c-Si photoelectrode. Notably, TiO2 showed a synergistic effect with the Au electrocatalyst in increasing the faradaic efficiency (FE) of NO3− reduction for NH3 production, which was further confirmed by density functional theory calculations. Overall, the Au-loaded TiO2-protected c-Si photoelectrode showed a stable and record-high NH3-production rate of 1590 ± 40 μgNH cm−2 h−1 with an FE of 83.4% ± 5.6% at −0.35 V vs. the reversible hydrogen electrode. © 2025 RSC.
Publisher
Royal Society of Chemistry
ISSN
2753-801X

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