TY - JOUR
T1 - A Near-Perfect Pt Cocatalyst with a Spatially Oriented Distribution of Pt2+/Pt0 for Photocatalytic Water Splitting
AU - Liu, Sibi
AU - Zhang, Youzi
AU - Wang, Maohuai
AU - Wei, Yanping
AU - Wang, Yijin
AU - Chen, Weizhe
AU - Mao, Siman
AU - Guo, Peng
AU - Ghasemi, Jahan B.
AU - Zhou, Junchao
AU - Zhang, Shujie
AU - Li, Xuanhua
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/11/6
Y1 - 2025/11/6
N2 - Loading the cocatalyst, e.g., Pt, is a promising strategy for photocatalytic overall water splitting, in which metallic state Pt° facilitates proton reduction and positive valence state Pt2+ inhibits H2/O2 recombination. However, simultaneously leveraging the advantages of Pt0 and Pt2+ in Pt-photocatalyst hybrids for photocatalytic water splitting is challenging. Herein, a universal strategy is demonstrated for modulating Pt valence state, obtaining a spatially oriented distribution of Pt2+/Pt3 and a close to zero proton reduction barrier, along with isolated O2 adsorption. As a proof of concept, Pt undergoes electron transfer to ZnIn2S4, accompanied by partial oxidation from Pt0 to Pt2+ through the introduction of electron-deficient centers in ZnIn2S4 via vanadium doping and sulfur vacancy (V-Sv-ZIS). Reverse electron transfer induces Pt2+ dominating 83% of the region near the Pt/V-Sv-ZIS interface and Pt0 dominating in the remaining 17% near the Pt cluster center, which can be extended to other Pt-based catalyst systems. The dominant Pt2+ inhibits O2 adsorption and induces the lowest H2/O2 recombination rate of 4%, and the minimal Pt0 obtains a 152.2-fold increase in photogenerated electron density, ultimately realizing a 45.4-fold increase in photocatalytic activity. A 10 m2 large-area photocatalytic system is fabricated, producing 6.4 L of H2 per day under natural sunlight.
AB - Loading the cocatalyst, e.g., Pt, is a promising strategy for photocatalytic overall water splitting, in which metallic state Pt° facilitates proton reduction and positive valence state Pt2+ inhibits H2/O2 recombination. However, simultaneously leveraging the advantages of Pt0 and Pt2+ in Pt-photocatalyst hybrids for photocatalytic water splitting is challenging. Herein, a universal strategy is demonstrated for modulating Pt valence state, obtaining a spatially oriented distribution of Pt2+/Pt3 and a close to zero proton reduction barrier, along with isolated O2 adsorption. As a proof of concept, Pt undergoes electron transfer to ZnIn2S4, accompanied by partial oxidation from Pt0 to Pt2+ through the introduction of electron-deficient centers in ZnIn2S4 via vanadium doping and sulfur vacancy (V-Sv-ZIS). Reverse electron transfer induces Pt2+ dominating 83% of the region near the Pt/V-Sv-ZIS interface and Pt0 dominating in the remaining 17% near the Pt cluster center, which can be extended to other Pt-based catalyst systems. The dominant Pt2+ inhibits O2 adsorption and induces the lowest H2/O2 recombination rate of 4%, and the minimal Pt0 obtains a 152.2-fold increase in photogenerated electron density, ultimately realizing a 45.4-fold increase in photocatalytic activity. A 10 m2 large-area photocatalytic system is fabricated, producing 6.4 L of H2 per day under natural sunlight.
KW - Near-perfect Pt
KW - cocatalyst-catalyst interaction
KW - overall water splitting
KW - reverse reactions
KW - spatially oriented distribution of Pt valence state
UR - https://www.scopus.com/pages/publications/105014010603
U2 - 10.1002/adma.202508693
DO - 10.1002/adma.202508693
M3 - 文章
AN - SCOPUS:105014010603
SN - 0935-9648
VL - 37
JO - Advanced Materials
JF - Advanced Materials
IS - 44
M1 - e08693
ER -