Low‐Temperature Atomic Metal Deposition for an Efficient Dual‐Site Incorporated Photocatalyst

S Seungwoo Yoo (Center for Nanoparticle Research) C Chan Woo Lee (Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul 08826, Republic of Korea) K Kangjae Lee (Center for Nanoparticle Research) J Junseok Moon (Center for Nanoparticle Research) H Hyunsoo Ji (Center for Nanoparticle Research) J Jaeho Moon (Center For Nanoparticle Research Institute For Basic Science (IBS) Seoul Republic of Korea) D Dongho Shin (Center for Nanoparticle Research) Y Youngha Kweon (Department of Applied Chemistry Kyung Hee University Yongin Gyeonggi 17104 Republic of Korea) J Juri Lee (Department of Chemistry) K Kang Kim (Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, The University of Osaka , Toyonaka, Osaka 560-8531,) J Jaewoo Lee G Guocheng Deng (Center for Nanoparticle Research) B Byoung‐hoon Lee (KU‐KIST Graduate School of Converging Science and Technology Korea University Seoul Republic of Korea) J Jaeyune Ryu (Department of Chemical and Biological Engineering, and Institute of Chemical Processes) M Minho Kim (Department of Applied Chemistry) M Megalamane S. Bootharaju (Center for Nanoparticle Research) T Taeghwan Hyeon (Center for Nanoparticle Research)

Abstract

Abstract A universal, low‐temperature atomic metal deposition (LTAMD) strategy is herein reported for synthesis of atomically dispersed metal catalysts (ADMCs) using metal carbonyl precursors. This scalable approach enables the fabrication of diverse ADMCs with various transition metals, including W, Cr, Mn, Fe, Co, Mo, Ru, Rh, and Re on oxide and carbon‐based supports. Tungsten‐incorporated TiO 2 exhibits exceptional photocatalytic benzene oxidation activity, attributed to the generation of surface oxygen vacancies with Ti 3+ , which act as active reduction sites under aerobic conditions, facilitating the formation of reduced oxygen intermediates. It is demonstrated that tungsten plays a crucial role in stabilizing these oxygen vacancies and promoting electron‐hole separation by accommodating photogenerated holes and activating the C─H bond of benzene. Leveraging dual‐site photocatalysis, the tungsten‐TiO 2 system achieves a remarkable 42.7% yield in the photocatalytic oxidation of benzene to phenol, with high recyclability over ten cycles. By integrating theoretical insights with experimental results, a distinct photocatalytic mechanism is unveiled, driven by the synergistic interaction between atomic tungsten and TiO 2 . This strategy not only enables the energy‐efficient synthesis of a broad range of ADMCs on various supports but also enhances the intrinsic catalytic properties of the TiO 2 photocatalyst without compromising its crystal or electronic structure.

Article Details

Volume / Issue Vol. 37, Issue 41
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (17)

S

Seungwoo Yoo

Center for Nanoparticle Research

C

Chan Woo Lee

Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul 08826, Republic of Korea

K

Kangjae Lee

Center for Nanoparticle Research

J

Junseok Moon

Center for Nanoparticle Research

H

Hyunsoo Ji

Center for Nanoparticle Research

J

Jaeho Moon

Center For Nanoparticle Research Institute For Basic Science (IBS) Seoul Republic of Korea

D

Dongho Shin

Center for Nanoparticle Research

Y

Youngha Kweon

Department of Applied Chemistry Kyung Hee University Yongin Gyeonggi 17104 Republic of Korea

J

Juri Lee

Department of Chemistry

K

Kang Kim

Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, The University of Osaka , Toyonaka, Osaka 560-8531,

J

Jaewoo Lee

G

Guocheng Deng

Center for Nanoparticle Research

B

Byoung‐hoon Lee

KU‐KIST Graduate School of Converging Science and Technology Korea University Seoul Republic of Korea

J

Jaeyune Ryu

Department of Chemical and Biological Engineering, and Institute of Chemical Processes

M

Minho Kim

Department of Applied Chemistry

M

Megalamane S. Bootharaju

Center for Nanoparticle Research

T

Taeghwan Hyeon

Center for Nanoparticle Research