TY - JOUR
T1 - Atomically dispersed dual frustrated Lewis pairs for efficient relay conversion of nitrate into ammonia
AU - Xiao, Hang
AU - Lv, Yang
AU - Hua, Weibo
AU - Xia, Mengyang
AU - Teng, Wenkai
AU - Xu, Baorong
AU - Li, He
AU - Ou, Honghui
AU - Lin, Bo
AU - Yang, Guidong
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/11/15
Y1 - 2025/11/15
N2 - Electrocatalytic nitrate reduction holds great promise for ammonia synthesis. However, the unbalanced adsorption and activation behaviors of intermediates as well as the slow conversion kinetics significantly limit the efficiency. Herein, we design the unusual atomically-dispersed dual frustrated Lewis pairs (AD-FLPs) on the Cu-Co diatomic catalyst (Cu/Co-CN). In Cu/Co-CN, atomically dispersed electron-deficient Cu and adjacent electron-rich N atom serve as Lewis acid and Lewis base site to form N···CuSA frustrated Lewis pairs (FLPs), respectively, while Co and N atoms form N···CoSA FLPs. Noteworthily, N···CuSA FLPs preferentially adsorb NO3- while N···CoSA FLPs preferentially adsorb NO2-, forming the unique Cu−O−N-O−N and Co−O−N-O−N structures with strong d-p interactions, respectively. These structures induce a push-pull electronic effect for the complementary activation of NO3- and NO2-. Moreover, AD-FLPs enable the balanced relay reaction kinetics (K1/K2=0.95) for conversion of NO3- to NO2- (K1) and NO2- to NH3 (K2), exceeding the single N···CuSA FLPs (K1/K2=7.1) or single N···CoSA FLPs (K1/K2=0.6), accelerating key intermediates conversion kinetics and achieving rapid relay conversion. As a result, Cu/Co-CN exhibits an ultrahigh NH3 evolution rate of 482.56 mmol·g−1·h−1 with a Faradaic efficiency of 96 %. This work opens a new chapter for designing high-efficiency FLPs catalysts and exploring structure-activity relationships at the single-atom scale.
AB - Electrocatalytic nitrate reduction holds great promise for ammonia synthesis. However, the unbalanced adsorption and activation behaviors of intermediates as well as the slow conversion kinetics significantly limit the efficiency. Herein, we design the unusual atomically-dispersed dual frustrated Lewis pairs (AD-FLPs) on the Cu-Co diatomic catalyst (Cu/Co-CN). In Cu/Co-CN, atomically dispersed electron-deficient Cu and adjacent electron-rich N atom serve as Lewis acid and Lewis base site to form N···CuSA frustrated Lewis pairs (FLPs), respectively, while Co and N atoms form N···CoSA FLPs. Noteworthily, N···CuSA FLPs preferentially adsorb NO3- while N···CoSA FLPs preferentially adsorb NO2-, forming the unique Cu−O−N-O−N and Co−O−N-O−N structures with strong d-p interactions, respectively. These structures induce a push-pull electronic effect for the complementary activation of NO3- and NO2-. Moreover, AD-FLPs enable the balanced relay reaction kinetics (K1/K2=0.95) for conversion of NO3- to NO2- (K1) and NO2- to NH3 (K2), exceeding the single N···CuSA FLPs (K1/K2=7.1) or single N···CoSA FLPs (K1/K2=0.6), accelerating key intermediates conversion kinetics and achieving rapid relay conversion. As a result, Cu/Co-CN exhibits an ultrahigh NH3 evolution rate of 482.56 mmol·g−1·h−1 with a Faradaic efficiency of 96 %. This work opens a new chapter for designing high-efficiency FLPs catalysts and exploring structure-activity relationships at the single-atom scale.
KW - Activation and conversion of key intermediates
KW - Dual frustrated Lewis pairs
KW - Heteronuclear diatomic catalyst
KW - Push-pull electron transfer effect
KW - Relay ammonia synthesis
UR - https://www.scopus.com/pages/publications/105005402257
U2 - 10.1016/j.apcatb.2025.125501
DO - 10.1016/j.apcatb.2025.125501
M3 - 文章
AN - SCOPUS:105005402257
SN - 0926-3373
VL - 377
JO - Applied Catalysis B: Environmental
JF - Applied Catalysis B: Environmental
M1 - 125501
ER -