Light-Triggered Reversible Change in the Electronic Structure of MoO(3) Nanosheets via an Excited-State Proton Transfer Mechanism

通过激发态质子转移机制实现光触发的MoO(3)纳米片电子结构的可逆变化

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Abstract

Light is an attractive source of energy for regulating stimulus-responsive chemical systems. Here, we use light as a gating source to control the redox state, the localized surface plasmonic resonance (LSPR) peak, and the structure of molybdenum oxide (MoO(3)) nanosheets, which are important for various applications. However, the light excitation is not that of the MoO(3) nanosheets but rather that of pyranine (HPTS) photoacids, which in turn undergo an excited-state proton transfer (ESPT) process. We show that the ESPT process from HPTS to the nanosheets and the intercalation of protons within the MoO(3) nanosheets trigger the reduction of the nanosheets and the broadening of the LSPR peak, a process that is reversible, meaning that in the absence of light, the LSPR peak diminishes and the nanosheets return to their oxidized form. We further show that this reversible process is accompanied by a change in the nanosheet size and morphology.

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