催化学报 ›› 2026, Vol. 88: 269-278.DOI: 10.1016/S1872-2067(26)65089-9

• 论文 • 上一篇    下一篇

氢化物增强的等离子体催化在室温常压下实现超高效率氨合成

骆诗剑, 陈浩, 杨宇然, 宋阳, 刘泳铎, 龙道莙*(), 陈四国*(), 魏子栋   

  1. 重庆大学化学化工学院, 特种化学电源全国重点实验室, 前沿交叉学科研究院, 先进电能源化学研究中心, 重庆 401331
  • 收稿日期:2025-12-12 接受日期:2026-01-19 出版日期:2026-09-18 发布日期:2026-09-05
  • 通讯作者: *电子信箱: ldjsicau@163.com (龙道莙),
    csg810519@126.com (陈四国).
  • 基金资助:
    国家重点研发计划(2024YFA1509201);国家自然科学基金(22579021);国家自然科学基金(22178034);国家自然科学基金(22508028);中央高校基本科研业务费资助(2025CDJ-IAISYB-048);国家博士后创新人才支持计划(BX20250316);重庆市博士后研究项目特别资助(2024CQBSHTB3120)

Hydride-enhanced plasma catalysis enables ultrahigh-rate ammonia synthesis at room temperature and atmospheric pressure

Shijian Luo, Hao Chen, Yuran Yang, Yang Song, Yongduo Liu, Daojun Long*(), Siguo Chen*(), Zidong Wei   

  1. State Key Laboratory of Advanced Chemical Power Sources (SKL-ACPS), School of Chemistry and Chemical Engineering, Center of Advanced Electrochemical Energy (CAEE), Institute of Advanced Interdisciplinary Studies, Chongqing University, Chongqing 401331, China
  • Received:2025-12-12 Accepted:2026-01-19 Online:2026-09-18 Published:2026-09-05
  • Supported by:
    The National Key R&D Program of China(2024YFA1509201);The National Natural Science Foundation of China(22579021);The National Natural Science Foundation of China(22178034);The National Natural Science Foundation of China(22508028);The Fundamental Research Funds for the Central Universities(2025CDJ-IAISYB-048);The Postdoctoral Fellowship Program and China Postdoctoral Science Foundation(BX20250316);The Chongqing Postdoctoral Science Special Foundation(2024CQBSHTB3120)

摘要:

氨(NH3)不仅是重要的化工原料, 也被视为理想的无碳燃料和清洁能源载体. 近年来, 为开发绿色、可持续的合成氨新途径, 等离子体催化技术已逐渐成为研究热点. 该技术不仅可以大幅降低碳排放量, 还有利于实现分布式的氨生产, 助力间歇式可再生能源的转化、储存和运输. 在等离子体催化过程中, 氢自由基(H•)已被证实是活化氮气(N2)等惰性分子的关键活性物种, 可作为强还原剂和直接氢源, 在气相中直接参与N2分子的活化过程, 提高NH3的生成速率. 然而, H•物种的生成通常依赖于高功率的等离子体放电条件, 这导致了反应的高能耗, 进而制约了该技术的工业化发展. 因此, 开发能够在低功耗条件下稳定产生氢自由基的新型催化体系, 是推动该技术发展的核心挑战.
针对上述挑战, 本文创新性地提出了一种金属氢化物增强的等离子体催化策略. 该策略以金属氢化物(包括TiH2, CaH2和LiH)作为氢供体, 在等离子体放电条件下, 其晶格氢原子能够以H•的形式释放到气相中, 同时在催化剂表面生成氢空位. 这些氢空位可被通入的H2分子快速补充, 从而构建一个“氢释放-氢补充”的动态循环, 在低功耗条件下实现H•物种的稳定供给. 等离子体催化测试表明, 本研究制备的TiH2催化剂在室温常压的反应条件下展现出优异的催化性能, 实现了高达360.9 mg·h‒1·g‒1的氨产率以及9.02 g·kWh‒1的能量效率, 该性能不仅超越了绝大多数已报道的新型合成氨系统, 并且十分接近传统哈伯法的生产效率. 电子顺磁共振波谱和正电子湮没谱证实了催化剂表面氢空位在反应过程中的形成与循环; 自由基捕获实验直接检测到了氢化物释放的H•和N2还原过程中的关键中间体NNH•, 这些结果为“氢释放-氢补充”的动态循环机制提供了直接证据. 密度泛函理论进一步表明, TiH2具有最低的氢空位形成能, 从而最有利于晶格氢的释放与氢空位的形成, 这是其表现出最高性能的原因. 反应路径分析表明, 一旦反应体系中形成充足的H•物种, N2分子与之反应生成NNH•中间体的能垒仅为0.123 eV, 而NNH•后续加氢形成NH3的过程在热力学上为自发的放热过程, 这一结果不仅与实验中检测到的大量H•物种和NNH•中间体的结果高度吻合, 也解释了本文提出的氢化物增强策略的表现出高性能的原因.
综上, 本工作开发了一种金属氢化物增强等离子体催化效率的新策略. 该策略通过耦合非热等离子体与金属氢化物催化剂, 在低功耗条件下实现了高效、稳定的活性H•供给, 从而在室温常压的反应条件下实现了超高的氨合成速率. 该研究不仅证实了金属氢化物作为高效等离子体催化剂的巨大潜力, 还为惰性分子的活化提供了全新的催化剂设计思路与普适性策略.

关键词: 非热等离子体, 合成氨, 氮气还原, 等离子体催化, 协同催化转化

Abstract:

The decarbonization of the ammonia (NH3) synthesis industry demands the development of energy-efficient and sustainable processes. Among various emerging approaches, non-thermal plasma (NTP) catalysis shows significant promise for overcoming the sluggish kinetics of nitrogen (N2) activation under mild conditions while minimizing carbon emissions. Growing evidence suggests that plasma-derived hydrogen radical (H•) can serve as powerful reducing agent and direct hydrogen source to activate N2 molecules in the gas phase. However, the efficient and sustained generation of H• species typically relies on high-power plasma dischages, leading to excessive energy consumption. In this study, we introduce a metal hydride-enhanced plasma catalysis strategy, in which TiH2, CaH2, and LiH act as hydrogen donors, releasing lattice hydrogen atoms as H• radicals while generating hydrogen vacancies on the surface. These vacancies are rapidly replenished by H2 molecules, establishing a self-sustaining hydrogen-release/replenishment cycle that continuously supplies reactive H• species. As a result, this approach achieves an untrahigh NH3 yield of 360.9 mg·h-1·g-1 and an energy efficiency of 9.02 g·kWh-1 at room temperature and atmospheric pressure, surpassing most reported catalytic systems. Mechanistic studies reveal that the release of lattice hydrogen is the rate-determining step, while N2 hydrogenation proceeds with a remarkably low energy barrier of 0.123 eV. These findings highlight the potential of metal hydrides as effective catalysts for plasma catalysis and provide valuable guidelines for the development of future catalysts aimed at energy-efficient activation of inert molecules.

Key words: Ammonia synthesis, Nitrogen reduction, Plasma catalysis, Nonthermal plasma, Catalytic conversion