TY - JOUR
T1 - Self-activated superhydrophilic green ZnIn2S4 realizing solar-driven overall water splitting
T2 - close-to-unity stability for a full daytime
AU - Chong, Wei Kean
AU - Ng, Boon Junn
AU - Lee, Yong Jieh
AU - Tan, Lling Lling
AU - Putri, Lutfi Kurnianditia
AU - Low, Jingxiang
AU - Mohamed, Abdul Rahman
AU - Chai, Siang Piao
N1 - Funding Information:
This research project was funded by the Malaysia Research University Network (MRUN) from the Ministry of Higher Education Malaysia (Grant No. 304/PJKIMIA/656501/K145) and MUM-ASEAN Research Grant Scheme (Ref. No. ASE-000010) from Monash University Malaysia. This work was also supported by the High Impact Research Support Fund (HIRSF) (Ref. No. REU00354) and Advanced Computing Platform (APC) from Monash University Malaysia. We thank Hong Yuan Tok from Hi-Tech Instruments Sdn. Bhd. for the spherical aberration-corrected BF-STEM measurements.
Publisher Copyright:
© 2023, The Author(s).
PY - 2023/11/24
Y1 - 2023/11/24
N2 - Engineering an efficient semiconductor to sustainably produce green hydrogen via solar-driven water splitting is one of the cutting-edge strategies for carbon-neutral energy ecosystem. Herein, a superhydrophilic green hollow ZnIn2S4 (gZIS) was fabricated to realize unassisted photocatalytic overall water splitting. The hollow hierarchical framework benefits exposure of intrinsically active facets and activates inert basal planes. The superhydrophilic nature of gZIS promotes intense surface water molecule interactions. The presence of vacancies within gZIS facilitates photon energy utilization and charge transfer. Systematic theoretical computations signify the defect-induced charge redistribution of gZIS enhancing water activation and reducing surface kinetic barriers. Ultimately, the gZIS could drive photocatalytic pure water splitting by retaining close-to-unity stability for a full daytime reaction with performance comparable to other complex sulfide-based materials. This work reports a self-activated, single-component cocatalyst-free gZIS with great exploration value, potentially providing a state-of-the-art design and innovative aperture for efficient solar-driven hydrogen production to achieve carbon-neutrality.
AB - Engineering an efficient semiconductor to sustainably produce green hydrogen via solar-driven water splitting is one of the cutting-edge strategies for carbon-neutral energy ecosystem. Herein, a superhydrophilic green hollow ZnIn2S4 (gZIS) was fabricated to realize unassisted photocatalytic overall water splitting. The hollow hierarchical framework benefits exposure of intrinsically active facets and activates inert basal planes. The superhydrophilic nature of gZIS promotes intense surface water molecule interactions. The presence of vacancies within gZIS facilitates photon energy utilization and charge transfer. Systematic theoretical computations signify the defect-induced charge redistribution of gZIS enhancing water activation and reducing surface kinetic barriers. Ultimately, the gZIS could drive photocatalytic pure water splitting by retaining close-to-unity stability for a full daytime reaction with performance comparable to other complex sulfide-based materials. This work reports a self-activated, single-component cocatalyst-free gZIS with great exploration value, potentially providing a state-of-the-art design and innovative aperture for efficient solar-driven hydrogen production to achieve carbon-neutrality.
UR - https://www.scopus.com/pages/publications/85177577174
U2 - 10.1038/s41467-023-43331-x
DO - 10.1038/s41467-023-43331-x
M3 - Article
AN - SCOPUS:85177577174
SN - 2041-1723
VL - 14
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 7676
ER -