
楊慶鑫,男,1993年生,山東菏澤人,副教授,中國石油大學(北京)優秀青年學者,重質油全國重點實驗室固定成員。2022年6月在德國萊布尼茨催化研究所(LIKAT Rostock)/羅斯托克大學獲得自然科學博士學位(導師:Prof. Evgenii V. Kondratenko),隨后在瑞士蘇黎世聯邦理工學院做博士后研究(合作導師:Prof. Javier Pérez-Ramírez),2025年3月至今在中國石油大學(北京)化工學院從事教學與科研工作。近年來圍繞工業多相催化開展應用基礎研究工作,以可持續能源化工過程為主線,通過研究構效關系構建高效催化反應體系,重點關注 “雙碳” 背景下碳基、氮基能源小分子的催化轉化利用,發表學術論文 20 余篇,其中第一作者/通訊作者代表作發表在Nat. Catal.、Acc. Mater. Res.、Angew. Chem. Int. Ed.、 AIChE J.、J. Catal、Appl. Catal. B、ACS Catal.、Chem Catal.等國內外權威期刊,受邀撰寫英文專著一章。近年來承擔國家自然科學基金(青年科學基金C類)、學校優秀青年學者基金、重質油全國重點實驗室自主研究課題等科研項目,榮獲第十屆中國催化獎-中國催化新秀獎(2025年)、碳未來青年研究員獎(2024年)、德國催化學會紅獅獎章(2022年)等獎勵榮譽。
通訊地址:北京市昌平區府學路18號 中國石油大學(北京)化工樓A座
郵箱:qingxin.yang@cup.edu.cn
【研究領域】
“雙碳” 背景下碳基、氮基能源小分子的高效催化轉化
固體催化劑的設計、表征與多相催化反應機理研究
【科研項目】
國家自然科學基金青年科學基金項目(C類),2026-2028,負責人
重質油全國重點實驗室自主研究課題項目,2025-2027,負責人
中國石油大學(北京)優秀青年學者項目,2025-2027,負責人
【代表性論著】
專著章節:
1. Q. Yang, E.V. Kondratenko, Status of catalyst development for CO2 hydrogenation to platform chemicals CH3OH and CO (Chapter 4) in Advances in CO2 Utilization: from Fundamentals to Applications (Eds.: G. Zhang, A. Bogaerts, J. Ye, C.-j. Liu) Springer, 2024, pp. 81–104.
代表性論文:
1. Understanding Mn-modulated restructuring of Fe-based catalysts for controlling selectivity in CO2 hydrogenation to olefins. Q. Yang,#,* E.A. Fedorova,# D.-B. Cao,# E. Sara?i, V.A. Kondratenko, C.R. Kreyenschulte, H. Lund, S. Bartling, J. Wei?, D.E. Doronkin, J.-D. Grunwaldt, A. Brückner, H. Jiao, E.V. Kondratenko* Nat. Catal. 2025, 8, 595–606.
2. From understanding of catalyst functioning toward controlling selectivity in CO2 hydrogenation to higher hydrocarbons over Fe-based catalysts. Q. Yang,* E.V. Kondratenko* Acc. Mater. Res. 2024, 5, 11, 1314–1328.
3. Identifying performance descriptors in CO2 hydrogenation over iron-based catalysts promoted with alkali metals. Q. Yang, V.A. Kondratenko, S.A. Petrov, D.E. Doronkin, E. Sara?i, H. Lund, A. Arinchtein, R. Kraehnert, A.S. Skrypnik, A.A. Matvienko, E.V. Kondratenko* Angew. Chem. Int. Ed. 2022, 61, e202116517.
4. Core‐shell structured HZSM‐5@mesoSiO2 catalysts with tunable shell thickness for efficient n‐butane catalytic cracking. Q. Yang,# Y. Li,# Z. Chen, L. Hu, Z. Li, Y. Wang, Z. Zhao, C. Xu, G. Jiang* AIChE J. 2021, 67, e17130.
5. The role of metal nanostructure in ceria-supported catalysts for ammonia oxidation to nitrous oxide. I. Surin,# Q. Yang,# F. Krumeich, T. Otroshchenko, V.A. Kondratenko, E.V. Kondratenko, and J. Pérez-Ramírez* Chem Catal. 2025, 5, 101165.
6. Lattice-stabilized chromium atoms on ceria for N2O synthesis. Q. Yang,# I. Surin,# J. Geiger, H. Eliasson, M. Agrachev, V.A. Kondratenko, A. Zanina, F. Krumeich, G. Jeschke, R. Erni, E.V. Kondratenko, N. López, J. Pérez-Ramírez* ACS Catal. 2023, 13, 15977–15990.
7. Understanding of the fate of α-Fe2O3 in CO2 hydrogenation through combined time-resolved in situ characterization and microkinetic analysis. Q. Yang, V.A. Kondratenko, H. Lund, S. Bartling, J. Weiss, A.S. Skrypnik, A. Brückner, E.V. Kondratenko* ACS Catal. 2023, 13, 9064–9077.
8. Activity and selectivity descriptors for iron carbides in CO2 hydrogenation. Q. Yang, E.A. Fedorova, S.A. Petrov, J. Weiss, H. Lund, A.S. Skrypnik, C. Robert-Kreyenschulte, V.Y. Bychkov, A.A. Matvienko, A. Brückner, E.V. Kondratenko* Appl. Catal. B-Environ. 2023, 327, 122450.
9. The role of Na for efficient CO2 hydrogenation to higher hydrocarbons over Fe-based catalysts under externally forced dynamic conditions. Q. Yang, H. Lund, S. Bartling, F. Krumeich, A.S. Skrypnik, E.V. Kondratenko* J. Catal. 2023, 426, 126–139.
10. Revealing property-performance relationships for efficient CO2 hydrogenation to higher hydrocarbons over Fe-based catalysts: Statistical analysis of literature data and its experimental validation. Q. Yang, A. Skrypnik, A. Matvienko, H. Lund, M. Holena, E. V. Kondratenko* Appl. Catal. B-Environ. 2021, 282, 119554.