Potential-dependent polaron formation activates TiO2 for the hydrogen evolution reaction
Abstract
Abstract Polarons play a crucial role in determining the (photo)electrocatalytic activity of semiconductors. Traditionally, polarons are introduced ex situ and irreversibly during catalyst synthesis, but herein we present a fundamentally different approach of introducing polarons in situ in a reversible manner using the external electrode potential. We study the potential-dependent polaron formation and its impact on electrocatalysis on a prototypical TiO 2 semiconductor electrode for the acidic hydrogen evolution reaction. By combining grand canonical ensemble density functional theory calculations with (in situ spectro) electrochemical experiments, we demonstrate notable changes in TiO 2 ´s electronic structure driven by the reduction of Ti 4+ to Ti 3+ surface polarons at reducing potentials. Our results show that potential-dependent polaron formation creates highly active sites for the hydrogen evolution reaction, breaks down the linear relationship between adsorption energy and electrode potential, and leads to complex electrochemical reaction kinetics. We discuss how the in situ polaron generation can be leveraged in improving semiconductor (photo)electrodes. Overall, our findings provide compelling evidence and an atomistic understanding of potential-dependent polaron formation in semiconductor (photo)electrocatalysis.
Article Details
Authors (11)
Tongwei Wu
Institute of Fundamental and Frontier Sciences
Xiaoxi Guo
School of Materials Science and Engineering
Guangjie Zhang
Yanning Zhang
State Key Laboratory of Regional Environment and Sustainability, School of Environment, Tsinghua University
Li Song
Zheng Liu
Hui Zhang
The Fourth Hospital of Hebei Medical University Shijiazhuang China
Shucheng Shi
School of Physical Science and Technology; Center for Transformative Science
Limin Liu
National Synchrotron Radiation Laboratory
Marko M. Melander
Nanoscience Center, Department of Chemistry, University of Jyväskylä 1 , Jyväskylän yliopisto 40014,
Karoliina Honkala
Nanoscience Center, Department of Chemistry, University of Jyväskylä 1 , Jyväskylän yliopisto 40014,