TY - JOUR
T1 - Forward and backward electron transfer on Pt loaded TiO2 photocatalysts under visible-light illumination
AU - Inoue, Naohiro
AU - Shiraki, Kyohei
AU - Kato, Kosaku
AU - Ashimura, Shu
AU - Yoshida, Masaaki
AU - Yamakata, Akira
N1 - Funding Information:
This work was supported by a Grant-in-Aid for Basic Research (B) (Nos. 19H02820 and 21H02050), Scientific Research on Innovative Areas (Mixed Anion Nos. 19H04708 and 16H06440 and Light-Energy Conversion No. 20H05117), Transformative Research Areas (A) (Dynamic Exciton No. 20H05838), Young Scientist (No. 20K15386), and the Strategic Research Infrastructure Project, Smart Energy Research Center of TTI, the Cooperative Research Program of Institute for Catalysis, Hokkaido University (No. 17A1001), ENEOS Hydrogen Trust Fund.
Publisher Copyright:
© 2021 Author(s).
PY - 2021/9/27
Y1 - 2021/9/27
N2 - The surface plasmon resonance (SPR) effects of metal nanoparticles prove versatile in terms of equipping wideband-gap photocatalysts, such as TiO2, with visible-light responsiveness. In this regard, Au is the most frequently used material for its SPR, but alternative materials are also being actively developed to effectively utilize solar light from the visible to the near-infrared region. In this work, we found that Pt particles loaded on TiO2 were also active in effecting SPR-induced photocatalysis. Time-resolved absorption measurements confirmed that visible-light irradiation induces electron transfer from Pt to TiO2, and the efficiency of this electron injection increases as the wavelength of the incident light decreases from 660 to 450nm. Observations of the peak shift of the vibrational frequency of adsorbed CO on Pt confirmed that the Fermi level of Pt decreases as the electron transfer from Pt to TiO2 proceeds. These results imply that Pt nanoparticles can act as sensitizers to induce electron transfer from Pt to TiO2, although Pt is a well-known cocatalyst that enhances H2 evolution by collecting electrons from TiO2. However, as the intensity of the irradiated light increased beyond 50 mW cm−2, a portion of the Pt particles started to capture the injected electrons from TiO2, suggesting that the electron transfer from one Pt particle to the other Pt particles via the conduction band of TiO2 proceeds under visible light illumination.
AB - The surface plasmon resonance (SPR) effects of metal nanoparticles prove versatile in terms of equipping wideband-gap photocatalysts, such as TiO2, with visible-light responsiveness. In this regard, Au is the most frequently used material for its SPR, but alternative materials are also being actively developed to effectively utilize solar light from the visible to the near-infrared region. In this work, we found that Pt particles loaded on TiO2 were also active in effecting SPR-induced photocatalysis. Time-resolved absorption measurements confirmed that visible-light irradiation induces electron transfer from Pt to TiO2, and the efficiency of this electron injection increases as the wavelength of the incident light decreases from 660 to 450nm. Observations of the peak shift of the vibrational frequency of adsorbed CO on Pt confirmed that the Fermi level of Pt decreases as the electron transfer from Pt to TiO2 proceeds. These results imply that Pt nanoparticles can act as sensitizers to induce electron transfer from Pt to TiO2, although Pt is a well-known cocatalyst that enhances H2 evolution by collecting electrons from TiO2. However, as the intensity of the irradiated light increased beyond 50 mW cm−2, a portion of the Pt particles started to capture the injected electrons from TiO2, suggesting that the electron transfer from one Pt particle to the other Pt particles via the conduction band of TiO2 proceeds under visible light illumination.
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U2 - 10.1063/5.0065074
DO - 10.1063/5.0065074
M3 - Article
AN - SCOPUS:85116440396
SN - 0003-6951
VL - 119
JO - Applied Physics Letters
JF - Applied Physics Letters
IS - 13
M1 - 133905
ER -