TY - JOUR
T1 - Lithium-Mediated Ammonia Electrosynthesis over Orderly Arranged Dipoles Regulated Solid-Electrolyte Interphase
AU - Duan, Fangying
AU - Chen, Junwu
AU - Zhang, Mengfei
AU - Liu, Yiming
AU - Xue, Hao
AU - Sun, Yu
AU - Li, Qiongguang
AU - Zhang, Xuehua
AU - Gao, Zijian
AU - Lu, Zongjing
AU - Schwaller, Philippe
AU - Zhang, Guangjin
AU - Zhang, Jian
AU - Yuan, Menglei
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025
Y1 - 2025
N2 - The electrocatalytic lithium-mediated nitrogen reduction reaction (Li-NRR) is considered as a promising alternative to the energy-intensive Haber-Bosch route. However, the solid electrolyte interphase that is derived from the electrolyte easily hinders the diffusion and nucleation of Li+, which ultimately suppresses N2 activation and the subsequent protonation process. Herein, we successfully construct surface oxygen vacancies (Ov) on commercial BaTiO3 (BTO) nanoparticles and further drive the phase transition from cubic/tetragonal to rhombohedral, which enhances the ferroelectricity of Ov-enriched BaTiO3 (BTOV) and produces orderly arranged dipoles. Systematic experimental and computational results validate that Ov-induced orderly arranged dipoles readily bind anions in the electrolyte and promote their reduction to form a LiF-rich SEI. The optimized anion-derived SEI enhances the Li+ transfer kinetics and effectively facilitates the uniform nucleation of Li+, which enables lower energy of Li+ desolvation and the reactant crossing the SEI. Thus, the as-prepared BTOV delivers a faradaic efficiency of 93.01% and an NH3 yield rate of 6.94 nmol s-1 cm-2 at −0.5 V which achieves more than a 45-fold performance improvement compared to the BTO counterpart. This work opens new horizons for the introduction of orderly arranged dipoles to modulate SEI chemistry and further enhance the intrinsic activity of the Li-NRR.
AB - The electrocatalytic lithium-mediated nitrogen reduction reaction (Li-NRR) is considered as a promising alternative to the energy-intensive Haber-Bosch route. However, the solid electrolyte interphase that is derived from the electrolyte easily hinders the diffusion and nucleation of Li+, which ultimately suppresses N2 activation and the subsequent protonation process. Herein, we successfully construct surface oxygen vacancies (Ov) on commercial BaTiO3 (BTO) nanoparticles and further drive the phase transition from cubic/tetragonal to rhombohedral, which enhances the ferroelectricity of Ov-enriched BaTiO3 (BTOV) and produces orderly arranged dipoles. Systematic experimental and computational results validate that Ov-induced orderly arranged dipoles readily bind anions in the electrolyte and promote their reduction to form a LiF-rich SEI. The optimized anion-derived SEI enhances the Li+ transfer kinetics and effectively facilitates the uniform nucleation of Li+, which enables lower energy of Li+ desolvation and the reactant crossing the SEI. Thus, the as-prepared BTOV delivers a faradaic efficiency of 93.01% and an NH3 yield rate of 6.94 nmol s-1 cm-2 at −0.5 V which achieves more than a 45-fold performance improvement compared to the BTO counterpart. This work opens new horizons for the introduction of orderly arranged dipoles to modulate SEI chemistry and further enhance the intrinsic activity of the Li-NRR.
UR - http://www.scopus.com/inward/record.url?scp=105007320041&partnerID=8YFLogxK
U2 - 10.1021/jacs.5c00551
DO - 10.1021/jacs.5c00551
M3 - 文章
AN - SCOPUS:105007320041
SN - 0002-7863
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
ER -