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Optimizing Interfacial Sites of Ni/ZrO2 via Morphology-Induced Crystal Phase Modulation to Enhance Photothermal CO2 Conversion

  • Dong Cao
  • , Yuhao Tian
  • , Xueke Wang
  • , Cuimei Li
  • , Weijie Cai
  • , Congming Li
  • , Chun Ran Chang
  • Yulin University
  • Dalian Polytechnic University
  • Taiyuan University of Technology

科研成果: 期刊稿件文章同行评审

摘要

Photothermal CO2 conversion into value-added syngas via dry reforming is pivotal for greenhouse gas utilization, yet its efficiency is constrained by catalyst deactivation. Here, we demonstrate that morphology-induced crystal phase modulation of ZrO2 supports enables effective optimization of interfacial sites in Ni/ZrO2 catalysts. By engineering cubic (Ni/ZrO2-C) and stellated (Ni/ZrO2-S) architectures, a metastable mixed-phase structure (54.8% monoclinic/37.3% tetragonal) is stabilized to achieve precise phase regulation. Systematic characterization reveals that this phase transformation strengthens metal–support interactions, improves Ni dispersion, and generates abundant oxygen vacancies. As a result, Ni/ZrO2-C achieves 95% ethanol conversion with lower by-product formation and exhibits exceptional stability, with a 50% lower deactivation rate (0.13% h−1) than Ni/ZrO2-S (0.26% h−1). The enhanced performance is attributed to improved surface basicity and more efficient coke gasification facilitated by interfacial oxygen vacancies. ​Theoretical calculations further confirm kinetically favorable pathways with reduced activation barriers, particularly for carbon oxidation, accounting for the observed 3.2-fold higher activity of Ni/ZrO2-C. This work establishes morphology-directed crystal phase engineering as a general strategy for designing efficient photothermal catalysts.

源语言英语
期刊Advanced Functional Materials
DOI
出版状态已接受/待刊 - 2026

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