TY - JOUR
T1 - Highly selective hydrogenation of CO2to ethanol via designed bifunctional Ir1-In2O3Single-atom catalyst
AU - Ye, Xue
AU - Yang, Chongya
AU - Pan, Xiaoli
AU - Ma, Junguo
AU - Zhang, Yaru
AU - Ren, Yujing
AU - Liu, Xiaoyan
AU - Li, Lin
AU - Huang, Yanqiang
N1 - Publisher Copyright:
©
PY - 2020/11/11
Y1 - 2020/11/11
N2 - Recently, CO2 hydrogenation for the controlled growth of the carbon chain to produce high-value C2 or C2+ products has attracted great interest, where achieving high selectivity for a specific product remains a challenge, especially for ethanol. Herein, we have designed a bifunctional Ir1-In2O3 single-atom catalyst, integrating two active catalytic centers by anchoring the monatomic Ir onto the In2O3 carrier. This Ir1-In2O3 single-atom catalyst is efficient for the hydrogenation of CO2 in liquid, yielding a high selectivity for ethanol (>99%) with an excellent initial turnover frequency (481 h-1). Characterization shows that the isolated Ir atom couples with the adjacent oxygen vacancy forming a Lewis acid-base pair, which activates the CO2 and forms the intermediate species of carbonyl (CO∗) adsorbed on the Ir atom. Coupling this CO∗ with the methoxide adsorbed on the In2O3 forms a C-C bond. The strategy of this effective bifunctional single-atom catalyst by synergistically utilizing the distinct catalytic roles of the single-atom site and the substrates provides a new avenue in catalyst design for complex catalysis.
AB - Recently, CO2 hydrogenation for the controlled growth of the carbon chain to produce high-value C2 or C2+ products has attracted great interest, where achieving high selectivity for a specific product remains a challenge, especially for ethanol. Herein, we have designed a bifunctional Ir1-In2O3 single-atom catalyst, integrating two active catalytic centers by anchoring the monatomic Ir onto the In2O3 carrier. This Ir1-In2O3 single-atom catalyst is efficient for the hydrogenation of CO2 in liquid, yielding a high selectivity for ethanol (>99%) with an excellent initial turnover frequency (481 h-1). Characterization shows that the isolated Ir atom couples with the adjacent oxygen vacancy forming a Lewis acid-base pair, which activates the CO2 and forms the intermediate species of carbonyl (CO∗) adsorbed on the Ir atom. Coupling this CO∗ with the methoxide adsorbed on the In2O3 forms a C-C bond. The strategy of this effective bifunctional single-atom catalyst by synergistically utilizing the distinct catalytic roles of the single-atom site and the substrates provides a new avenue in catalyst design for complex catalysis.
UR - http://www.scopus.com/inward/record.url?scp=85095855186&partnerID=8YFLogxK
U2 - 10.1021/jacs.0c08607
DO - 10.1021/jacs.0c08607
M3 - 文章
C2 - 33108198
AN - SCOPUS:85095855186
SN - 0002-7863
VL - 142
SP - 19001
EP - 19005
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 45
ER -