一、主要研究方向
1. 金属有机框架(MOFs/MOLs)与智能纳米材料的设计构筑;
2. 纳米酶催化医学与肿瘤精准诊疗;
3. 微纳催化材料及其能源环境应用;
4. 生物功能分子与生物医用材料开发。
二、个人简历
陈立勇,教授,博士/硕士生导师。2009年博士毕业于中国科学技术大学,随后赴新加坡南洋理工大学从事博士后研究,2012年入职大连理工大学,2020年加入蚌埠医科大学。
三、主持科研/教学项目
1. 新型氨基酸及多肽类生物活性小分子的绿色合成策略与工艺开发,在研,主持;
2. 基于乏氧荧光探针的纳米药物精准医疗体系构建,在研,主持;
3. 核靶向MOF纳米平台的构建及其在TNBC中对MYC难成药靶点的精准干预研究,在研,主持。
四、代表性成果(论文/专利/专著等)
1. A cascade catalytic Zr-TCPP(Fe)/cys/Au nanoplatform for ferroptosis-mediated chemodynamic therapy in triple-negative breast cancer. Bioorganic Chemistry. 2026, 176, 109854.
2. Upcycling PET waste into CoNi-based electrocatalysts for ethylene glycol oxidation integrated with energy-efficient H2 evolution. Journal of Colloid and Interface Science. 2026, 713, 140164.
3. Construction of Fe-MOF/FeCo-LDH electrocatalysts for efficient water oxidation and glucose oxidation to boost H2 evolution. International Journal of Hydrogen Energy. 2025, 158, 150510.
4. Synergistic cascade nanozyme of Zr-TPY-Fe/cys/Au for self-augmented chemodynamic therapy in TNBC cells. Chemical Communications. 2025,61(96), 19116-19119.
5. Cascaded Nanozyme-Driven Chemodynamic Therapy Enhancement for Triple-Negative Breast Cancer. ACS Applied Nano Materials. 2025, 8 (19), 9643-9649.
6. Multifunctional Au@ZIF-8/Fe nanomedicines for ferroptosis-induced therapy in triple-negative breast cancer. New J. Chem. 2025, 49 (18), 7297-7301.
7. Cu-nanocluster-loaded N-doped porous graphitic carbon for electrochemical CO2 reduction towards syngas generation. Chemical Communications. 2024, 60 (36) 4822-4825.
8. Tailoring Cu-Based Electrocatalysts for Enhanced Electrochemical CO2 Reduction to Alcohols: Structure–Selectivity Relationship. Inorganic Chemistry. 2024, 63 (26) 11935-11943.
9. Amorphous Fe–O–P electro(pre)catalysts for energy-efficient H2 production coupled with ethylene glycol oxidation. Chemical Communications. 2024,60, 14617–14620.
10. Chiral Iridium-Based TLD-1433 Analogues: Exploration of Enantiomer-Dependent Behavior in Photodynamic Cancer Therapy. Inorganic Chemistry. 2024, 63, 7792−7798.
11. Surface Engineering of TiO2 Nanosheets to Boost Photocatalytic Methanol Dehydrogenation for Hydrogen Evolution. Inorganic Chemistry. 2023, 62, 5700−5706.
12. Cu Nanocluster-Loaded TiO2 Nanosheets for Highly Efficient Generation of CO-Free Hydrogen by Selective Photocatalytic Dehydrogenation of Methanol to Formaldehyde. ACS Appl. Mater. Interfaces. 2021, 13, 18619−18626.