Enabling Efficient Photocatalytic Hydrogen Evolution via In Situ Loading of Ni Single Atomic Sites on Red Phosphorus Quantum Dots

Guangri Jia, Mingzi Sun, Ying Wang, Xiaoqiang Cui, Bolong Huang*, Jimmy C. Yu*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

51 Citations (Scopus)

Abstract

Currently, red phosphorus (RP) based catalysts have shown great potential for photocatalysis due to several important intrinsic advantages. The integration of single atomic sites and RP becomes a promising solution, which has rarely been discussed. Herein, a brand-new type of photocatalyst is proposed by in situ loading Ni single atoms on the P vacancy defects of the RP quantum dots (Ni-RPQD), achieving the successful attempt of combining single atomic catalyst (SAC), RP, and QDs for the first time. The Ni-P sites act as electron antennas, which attract the photocarriers to the solid-liquid interface and activate protons to initiate an efficient hydrogen production process, resulting in a high hydrogen production rate, which is 224 times higher than that of the original RPQD and is also superior to most reported RP-based photocatalysts and competitive with the non-noble metal-based SAC photocatalysts. Theoretical explorations reveal that the atomically dispersed Ni atoms significantly lower the energy barrier for electron transfer during photocatalysis. This results in enhanced adsorption and fast dissociation of water molecules for more efficient H2 generation. This study offers a significant and new direction for future developments of advanced and stable photocatalysts for water splitting. © 2022 Wiley-VCH GmbH.
Original languageEnglish
Article number2212051
JournalAdvanced Functional Materials
Volume33
Issue number10
Online published22 Dec 2022
DOIs
Publication statusPublished - 2 Mar 2023
Externally publishedYes

Funding

G.J. and M.S. contributed equally to this work. The authors would like to thank the Research Grants Council of Hong Kong SAR for providing financial support (General Research Fund Project 14307620), the NSFC/RGC Joint Research Scheme Project (N_PolyU502/21), the funding for Projects of Strategic Importance of The Hong Kong Polytechnic University (Project Code: 1-ZE2V) and Beijing Synchrotron Radiation Facility (BSRF) for the XAS measurements. B.H. also thanks the support from Research Centre for Carbon-Strategic Catalysis (RC-CSC), Research Institute for Smart Energy (RISE) and Research Institute for Intelligent Wearable Systems (RI-IWEAR) of the Hong Kong Polytechnic University.

Research Keywords

  • hydrogen generation
  • photocatalysis
  • quantum dots
  • red phosphorus
  • single atomic catalysts

RGC Funding Information

  • RGC-funded

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