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Coherent Sub-Nanometer Interface between Crystalline and Amorphous Materials Boosts Electrochemical Synthesis of Hydrogen Peroxide.

Zhikang BaoZihao YaoChongzhi ZhuYikuan LiuShijie ZhangJinyan ZhaoLei DingZaixiang XuXing ZhongYihan ZhuJian-Guo Wang
Published in: Small (Weinheim an der Bergstrasse, Germany) (2023)
There are enormous yet largely underexplored exotic phenomena and properties emerging from interfaces constructed by diverse types of components that may differ in composition, shape, or crystal structure. It remains poorly understood the unique properties a coherent interface between crystalline and amorphous materials may evoke, and there lacks a general strategy to fabricate such interfaces. It is demonstrated that by topotactic partial oxidation heterostructures composed of coherently registered crystalline and amorphous materials can be constructed. As a proof-of-concept study, heterostructures consisting of crystalline P 3 N 5 and amorphous P 3 N 5 O x can be synthesized by creating amorphous P 3 N 5 O x from crystalline P 3 N 5 without interrupting the covalent bonding across the coherent interface. The heterostructure is dictated by nanometer-sized short-range-ordered P 3 N 5 domains enclosed by amorphous P 3 N 5 O x matrix, which entails simultaneously fast charge transfer across the interface and bicomponent synergistic effect in catalysis. Such a P 3 N 5 /P 3 N 5 O x heterostructure attains an optimal adsorption energy for *OOH intermediates and exhibits superior electrocatalytic performance toward H 2 O 2 production by adopting a selectivity of 96.68% at 0.4 V RHE and a production rate of 321.5 mmol h -1 g catalyst -1 at -0.3 V RHE . The current study provides new insights into the synthetic strategy, chemical structure, and catalytic property of a sub-nanometer coherent interface formed between crystalline and amorphous materials.
Keyphrases
  • room temperature
  • hydrogen peroxide
  • ionic liquid
  • crystal structure
  • wastewater treatment
  • gold nanoparticles
  • mass spectrometry
  • simultaneous determination
  • metal organic framework