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Growth and Electrostatic/chemical Properties of Metal/LaAlO3/SrTiO3 Heterostructures
Published on: February 8, 2018
Unravelling the interfacial secondary electron transfer mechanism in HfO2@TiO2 core-shell nanostructures for boosted
Cheng Wang1, Yifan Wang1, Wentao Song2
1Eco-materials and Renewable Energy Research Center (ERERC), State Key Laboratory of Solid State Microstructures, College of Engineering and Applied Sciences, Nanjing University, No. 22 Hankou Road, Nanjing, 210093, P. R. China. yaoyingfang@nju.edu.cn.
Abstract:
The performance of X-ray radiocatalysis is fundamentally limited by the mismatch between high X-ray absorption and efficient charge utilization. Herein, we report an elaborate design of constructing HfO2@TiO2 core-shell heterostructures that synergistically integrates X-ray energy harvesting and catalytic amplification for enhanced X-ray radiocatalysis. Monte Carlo simulations map the three-dimensional energy deposition profile and display a critical TiO2 shell thickness of over 10 nm that maximizes the potential of electron-hole pair excitation by HfO2-derived secondary electrons inside the TiO2 shell. Experimental validations reveal a peak radiocatalytic activity at an optimized TiO2 shell thickness of 14.7 ± 4.6 nm, which enables effective superoxide generation and cytotoxicity under X-ray irradiation. In situ valence-to-core X-ray emission spectroscopy (vtc-XES) of Ti Kβ lines further unveiled that interfacial transfer of HfO2-derived secondary electrons enhances charge excitation from the valence band of TiO2, facilitating the rapid conversion of dissolved O2 into O2˙- for maximizing radiocatalytic performance. This work establishes a rational design principle for core-shell radiation converters to optimize radiation energy conversion and electron-hole pair excitation for efficient surface catalytic reactions, offering a pathway for advanced applications.

