触媒の解読: 構造と活性の相関を解明(英語版のみ)

2024年03月07日

東北大学材料科学高等研究所(WPI-AIMR)

In a new step towards combating climate change and transitioning to sustainable solutions, a group of researchers has developed a research paradigm that makes it easier to decipher the relationship between catalyst structures and their reactions.

Details of the researchers' breakthrough was published in the journal Angewandte Chemie on January 29, 2024.

Understanding how a catalyst's surface affects its activity can aid the design of efficient catalysts structures for specific reactivity requirements. However, grasping the mechanisms behind this relationship is no straightforward task given the complicated interface microenvironment of electrocatalysts.

“To decipher this, we honed in on the electrochemical CO2 reduction reaction (CO2RR) in Tin-Oxide-based (Sn-O) catalysts,” points out Hao Li, associate professor at Tohoku University's Advanced Institute for Materials Research (WPI-AIMR) and corresponding author of the paper. “In doing so, we not only uncovered the active surface species of SnO2-based catalysts during CO2RR but also established a clear correlation between surface speciation and CO2RR performance.”

The standard research paradigm uncovers the structure-property-activity relationships for the electrochemical CO2 reduction reaction (CO2RR) over SnO2. This picture illustrates the surface reconstruction induced by oxygen vacancies (1/1 ML coverage) and surface-active species (Sn layer) accountable for selective HCOOH production. ©Hao Li et al.

CO2RR is recognized as a promising method for reducing CO2 emissions and producing high-value fuels, with formic acid (HCOOH) being a noteworthy product because of its various applications in industries such as pharmaceuticals, metallurgy, and environmental remediation.

The proposed method helped identify the genuine surface states of SnO2 responsible for its performance in CO2 reduction reactions under specific electrocatalytic conditions. Moreover, the team corroborated their findings through experiments using various SnO2 shapes and advanced characterization techniques.

Li and his colleagues developed their methodology by combining theoretical studies with experimental electrochemical techniques.

“We bridged the gap between the theoretical and experimental, offering a comprehensive understanding of catalyst behavior under real-world conditions in the process,” adds Li.

The research team is now focused on applying this methodology to a variety of electrochemical reactions. In doing those, they hope to uncover more about unique structure-activity correlations, accelerating the design of high-performance and scalable electrocatalysts.

論文情報

論文タイトル: Deciphering Structure-Activity Relationship Towards CO2 Electroreduction over SnO2 by A Standard Research Paradigm
著者: Zhongyuan Guo, Yihong Yu, Congcong Li, Egon Campos dos Santos, Tianyi Wang, Huihui Li, Jiang Xu*, Chuangwei Liu*, and Hao Li*
雑誌名: Angewandte Chemie International Edition
DOI番号: 10.1002/anie.202319913新しいタブで開きます

問い合わせ先

研究に関すること

東北大学材料科学高等研究所(WPI-AIMR)
Hao Li

E-mail: li.hao.b8@tohoku.ac.jp
Webstie: Hao Li Laboratory新しいタブで開きます

報道に関すること

東北大学材料科学高等研究所(WPI-AIMR) 広報戦略室

Tel: 022-217-6146
E-mail: aimr-outreach@grp.tohoku.ac.jp