Non-Equilibrium Generation of Atomic N and H in Plasma Aided Ammonia Synthesis
ORAL
Abstract
Non-equilibrium generation of atomic nitrogen and hydrogen governing the ammonia production both in the gas phase and on the catalyst surface is critical to plasma aided ammonia synthesis. Here, this work studies the non-equilibrium generation of atomic nitrogen and hydrogen with a focus on the kinetic role of vibrational energy transfer of hydrogen molecules in plasma aided ammonia synthesis. By combining two-photon absorption laser induced fluorescence measurements and plasma kinetic modeling, we found that plasma not only generates ammonia but also produces critical H, N and NH radicals via both electron impact and vibrational energy transfer excitations. The vibrational energy transfer from the excited hydrogen H2(v=1) to higher vibrational levels H2(v=2-3) via the V-V exchange (H2(v)-H2(v)) and V-V' exchange (N2(v)-H2(v)) significantly enhances the H and NH production, and then promotes the coupling between N and NH for ammonia synthesis both in the gas phase and on the catalyst surface.
*This work was funded by the US DOE Plasma Science Center grant DE-SC0020233, DOE BES EERC grant: DE-AC0209CH11466, and NSF grant EFMA 2029425.
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Publication: Liu, Ning, Xingqian Mao, Christopher Kondratowicz, Timothy Y. Chen, Bowen Mei, Ziyu Wang, Yijie Xu et al. "Unraveling nonequilibrium generation of atomic nitrogen and hydrogen in plasma-aided ammonia synthesis." ACS Energy Letters 9, no. 5 (2024): 2031-2036.
Presenters
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Ning Liu
- Princeton University
- Shanghai Jiao Tong University