
团队方向包括:水污染控制、资源回收、环境催化化学、环境分析化学、环境毒理学、环境污染暴露与健康、环境健康。面向水污染控制与资源循环中的重大环境科学问题,围绕多相催化界面的物质与能量传递过程开展研究,重点揭示界面水/质子活化、电子转移、PCET与HAT等过程对活性物种生成及污染物反应路径的调控机制,揭示多位点催化界面结构、活性物种演化与污染物选择性转化之间的构效关系。
熟悉的主要仪器和技术方法:原位红外、原位电子顺磁共振、同步辐射原位XAS、同步辐射PDF、气相色谱-质谱联用。
欢迎对环境催化、新污染物治理、光/电催化和材料化学感兴趣的同学加入我们,无论你来自环境、化学、材料还是其他专业,只要保持好奇、乐于思考,都欢迎一起探索有趣而重要的科学问题。
希望在这里,我们既认真做科研,也认真生活;保持乐观与热爱,享受探索未知的快乐。愿你毕业时不仅有“学问”和一技之长,也依然眼里有光、心中有热爱,对科学好奇,对生活充满期待。
学科交叉合作意向:希望能与环境微生物、液相色谱-质谱联用、机器学习、代谢组学技术相关学科人才开展交叉合作。
1.界面氢物质的生成与调控
2.温室气体/水污染控制化学
3.废弃资源回收与资源化利用
4.原子催化剂的精确结构设计
1. 国家自然科学基金委员会,国家自然青年科学基金项目,多位点金属簇基氮化碳/有机自由基串联驱动光催化选择性活化生物质制乙烯机制研究,2024.01-2026.12,30万,在研,主持。
2. 广东省基础与应用基础研究基金委员会,广东省基础与应用基础研究面上项目,双活性位点氮化碳材料的构筑及光催化选择性氧化生物质耦合析氢反应机制研究,2022.01-2024.12,10万,结题,主持。
3. 广州市科学技术局,广州市基础与应用基础研究项目,构筑空间分离双位点氮化碳材料用于高效光催化还原CO2制碳氢液体产物, 2023.04-2024.12,5万,结题,主持。
4. 中国博士后基金委员会,中国博士后基金面上资助,高活性位点氮化碳基材料光催化制氢耦合生物质氧化及反应机制研究,2020. 7-2021.10, 8万,结题,主持。
5. 广东省科学院,广东省科学院“百人计划”引进专项,高选择性光催化还原CO2催化剂的设计及调控机制研究,2021.01-2025.12,150 万,结题,主持。
6. 广东省科技厅,广东省稳定性项目,金属簇基氮化碳用于光催化驱动微塑料增值,2026.01-2027.12,57万,在研,主持。
7. 企业横向,甲醇电催化安全在线制氢,2021.11-2024.6,210万,结题。
(一)论文
GoogleScholar:https://scholar.google.com/citations?user=BXIq39UAAAAJ&hl=zhCN&oi=ao
ResearchGate:https://www.researchgate.net/profile/Qiong-Liu-32?ev=hdr_xprf
ORCID:0000-0002-5172-4864
[1] Q. Liu, T. Chen, B. T. W. Lo, F. Wang*, G. Ouyang, Oxygen-oxygen bond cleavage enables efficient photocatalytic H2O2 production via an *O2 dissociation pathway,Nat. Commun. 2026, 17, 7218.
[2] W.Ling, Q. Liu*(共同通讯), W.Q,J.Li, Y.Han, B. T. W. Lo *, J. Ma*, R. Sun, Sulfur-engineered rhenium single-atoms on borides for tunable syngas and lactic acid co-production. Nat. Commun.2026, 17, 7331
[3] Y. Diao, G. Huang, Y. Luo*, S. Tian, S. Li, L. Wei, Z. Li, Z Li,*, J. Chen, Q. Liu*(共同通讯), H. Cheng*, Light-Induced Electron-Rich Gold Directs Nitrate Reduction to Dinitrogen. Angew. Chem. Int. Ed. 2026, e7025212.
[4] W. Xu*, Q. Xu, M. Liu, H, Shan, X. Bi, Q. Zhang, J. Ai, Q. Liu*(共同通讯), M. Wu*, Molecularly Tuned Carbon Dots for Visible-Light-Driven Boryl Radical Generation via Enhanced Hole Transfer,J. Am. Chem. Soc., 2025,147, 38, 35019–35030.
[5] Q. Liu, H. Cheng, T. Chen, B. T. W. Lo, F. Wang*, Oxygen-tolerant Photocatalytic Conversion of Simulated Flue Gas to Ethylene,Chem, 2025,11,102391.
[6] Q. Zhang, W. Xu*, Q. Liu*(共同通讯), C. Xia, Q. Shao, L. Ma, M. Wu*, Diastereoselective dearomatization of indoles via photocatalytic hydroboration on hydramine-functionalized carbon nitride, Nat. Commun. 2024, 15, 4371.
[7] Q. Liu, J. Lin, H. Cheng, L. Wei, F. Wang*, Simultaneous co-Photocatalytic CO2 Reductionand Ethanol Oxidation towards Synergistic Acetaldehyde Synthesis, Angew. Chem. Int. Ed. 2023, 62, e202218720. (化学类权威期刊,SCI 一区 top, IF=17.6,被Matter期刊专文亮点评述,研究内容入选人教版高二化学教材的课后习题)
[8] Q. Liu, H. Cheng, T. Chen, B. T. W. Lo, Z. Xiang, F. Wang*, Regulating *OCCHO intermediate pathway towards high selectivephotocatalytic CO2 reduction to CH3CHO over locally crystallizedcarbon nitride,Energy & Environmental Science, 2022, 15(1): 225-233.
[9] Y. Jiang*, Y. Tan, C. Tang, C. Qian,S. Wang, X. Xiong, Z. Zhang, M. Jia, F. Wang, Q. Liu*, Rapid activation of PMS by dual-site functional carbon nitride for continuous removal of PPCPs, Chemical Engineering Journal, 545 (2026) 179581.
[10] J. Li, S. Pan, Y*. Chen*, Q. Liu*, Engineering atomic Rb-N configurations to tune radical pathways for highly selective photocatalytic H2O2 synthesis coupled with biomass valorization, Journal of Energy Chemistry. 2024, 100: 215-225.
[11] F. Wang, J. Yang, S. Li, J. Liang, Y. Wang, R. Du, B. Zhou, Q. Liu*(共同通讯), C. Li*, Constructing ultralow-loading Cu single atoms/Fe2O3 particles on Nb2C MXenes for efficient utilization of atomic H to boost electrochemical debromination, Chemical Engineering Journal, 498 (2024) 155550.
[12] Chen C, Zhang Q, Liu F, Z. Zhang, Q. Liu*(共同通讯), X. Fang*, Regulating *COOH intermediate via amino alkylation engineering for exceptionally effective photocatalytic CO2 reduction. Journal of Energy Chemistry, 2024, 92: 282-291.
[13] Chen C, Liu F, Zhang Q, Z. Zhang, Q. Liu*(共同通讯), X. Fang*, Theoretical design andexperimental study of pyridine-incorporated polymeric carbon nitride with an optimal structure forboosting photocatalytic CO2 reduction. Chinese Journal of Catalysis, 2023, 46: 91-102.
[14] Q. Liu#, H. Cao#, W. Xu#, J. Li, Q. Zhou, W. Tao, H. Zhu, X. Zhong, L. Zhong, J. Lu, X. Peng, J. Wu*, Vacancy engineered polymeric carbon nitride nanosheets for enhanced photoredox catalytic efficiency, Cell Reports Physical Science, 2 (2021) 100491.
[15] Q. Liu, C. Chen, K. Yuan, C. Sewell, Z. Zhang, X. Fang, Z. Lin, Robust Route to Highly Porous Graphitic Carbon Nitride Microtubes with Preferred Adsorption Ability via Rational Design of One-dimension Supramolecular Precursors for Efficient Photocatalytic CO2 Conversion, Nano Energy, 77(2020) 105104.
[16] H. Cheng #, Q. Liu #(共一), Y. Diao, L. Wei, J. Chen, F. Wang, CoMo2S4 with Superior Conductivity for ElectrocatalyticHydrogen Evolution: Elucidating the Key Role of Co, Advanced Functional Materials, 31(2021) 2103732.
[17] Q. Liu#, H. Cheng#, T. Chen, B. T. W. Lo, J. Ma, F. Wang, Boosted CO desorption behaviors induced by spatial dyadic heterostructurein polymeric carbon nitride for effcient photocatalytic CO2 conversion, Applied Catalysis B-Environmental, 295(2021) 120289.
[18] Y. Jiang, Q. Liu*(共同通讯),K. Tan, F. Wang, H. Ng*, Insights into mechanisms, kinetics and pathway of continuous visible-lightphotodegradation of PPCPs via porous g-C3N4 with highly dispersed Fe(III)active sites, Chemical Engineering Journal, 423 (2021) 130095.
[19] Q. Liu, Q. Xi, L. Wei, Y. Lei, F. Wang, Edge Functionalization of Terminal Amino Group in Carbon Nitride by In-situ C-N Coupling for Photoreforming of Biomass into H2, Chemical Engineering Journal, 383(2020) 123792. (被Advances in Engineering(AIE)遴选为关键科学文章进行专题报道)
[20] Q. Liu, Z. Chen, W. Tao, H. Zhu, L. Zhong, R. Zou, F. Wang,Y. Lei, C. Liu, X Peng, Edge Activation of Inert Polymeric Carbon Nitride Matrix withBoosted Absorption Kinetic and Near-infrared Response forEfficient Photocatalytic CO2 Reduction, Journal of Materials Chemistry A, 8(2020) 11761-11772.
[21] Q. Liu, F. Wang,Y. Jiang, K. Yuan, W. Chen, R. Zou, J. Ma, L. Zhong, X Peng, Efficient Photoreforming of Lignocellulose into H2 and photocatalytic CO2 reduction via In-plane Surface Dyadic Heterostructure of Porous Polymeric Carbon Nitride, Carbon, 170 (2020) 199-212.
[22] Q. Liu, X. Wang, Q. Yang, Z. Zhang, X. Fang, A novel route combined precursor-hydrothermal pretreatment with microwave heating for preparing holey g-C3N4 nanosheets with high crystalline quality and extended visible light absorption, Applied Catalysis B-Environmental, 225 (2018) 22-29.
[23] Q. Liu, Y. Guo, Z. Chen, Z. Zhang, X. Fang, Constructing a novel ternary Fe(III)/graphene/g-C3N4 composite photocatalyst with enhanced visible-light driven photocatalytic activity via interfacial charge transfer effect, Applied Catalysis B-Environmental, 183 (2016) 231-241.
[24] Q. Liu, T. Chen, Y. Guo, Z. Zhang, X. Fang, Ultrathin g-C3N4 nanosheets coupled with carbon nanodots as 2D/OD composites for efficient photocatalytic H2 evolution, Applied Catalysis B-Environmental, 193 (2016) 248-258.
[25] Q. Liu, T. Chen, Y. Guo, Z. Zhang, X. Fang, Grafting Fe(III) species on carbon nanodots/Fe-doped g-C3N4 via interfacial charge transfer effect for highly improved photocatalytic performance, Applied Catalysis B-Environmental, 205 (2017) 173-181.
[26] Q. Liu, X. Wang, Z. Li, Z. Zhang, X. Fang, Annealing a precursor obtained from hydrothermal treatment of dicyandiamide for producing holey g-C3N4 nanosheets with improved photocatalytic activity, Applied Surface Science, 450 (2018) 46-56.
[27] Xi, L., C, Li., Y, Xu., Q. Liu, M, Bahri., L, Zhang., ... & J, Tang. Efficient hole abstraction for highly selective oxidative coupling of methane by Au-sputtered TiO2 photocatalysts. Nature Energy, 2023, 8(9)1013-1022.
[28] Y. Jiang*, Z. Sun, S. Wang, C. Li, Z. Wang, C. Qian, R. Wang, Y. Tan, X. Sun, S.-D. Li, Q. Liu*, Continuous visible-light photodegradation of emerging pollutants via in-situ cascade Fenton catalysis through dual active sites catalyst, Sep. Purif. Technol. (2025) 131859.
[29] Zhang Q, Chen C, Liu F, Z. Zhang, X. Fang*, Q. Liu*, Elucidating the tandem synergistic roles of Cs-O dual sites confined in carbon nitride toward selective photoreduction H2O2 production coupled with xylose oxidation. Chemical Engineering Journal, 509(2025) 161204.
[30]C. Liu#, L. Song#, Q. Liu#(共一), W. Chen, J. Xu, M. Wang, Y. Zhang, T.W. Tan, Z. Lei, L. Cheng, S.A. Khan, J. Wu, High-Speed Circulation Flow Platform Facilitating Practical Large-Scale Heterogeneous Photocatalysis, Org. Process Res. Dev. 28 (2024) 1964-1970.
(二)论著
无
(三)专利
1. 一种倒置加热制备氧化铋纳米线薄膜的方法, 中国发明专利授权号,ZL202010825523.5,2021年授权。并获美国PCT专利授权,授权号为US12, 234,543 B2。
2. 一种单晶超薄FeMo3S4纳米片电催化氮还原材料及其有机-硬模板合成方法和应用, 中国发明专利授权号,ZL202210137531.X,2022年授权。
3.一种氧化铋薄膜制备方法及可重构光电逻辑门, 中国发明专利授权号,ZL202211124468.2,2024年授权。
4. 一种双功能电极常温电催化甲醇在线制氢系统, 中国发明专利授权号,ZL20231 0321992.7,2025年授权。
5.一种电催化甲醇安全在线制氢耦合保险粉制备的联产方法, 中国发明专利授权号,ZL 2023 1 0277577.6,2025年授权。
6. 共生孪晶Ni2Mo6S6O2/MoS2二维纳米片的合成方法,ZL 2021 1 0022771.7,2021年授权。并获美国PCT专利授权,授权号为US11, 946,161 B2。
(四)奖励
1.2025年辽宁省自然科学奖二等奖,排名:2/5。
2第一届全国博士后创新创业大赛创业赛铜奖,排名:3/8。
本科生课程:《清洁生产》
研究生课程:《环境健康工程技术与应用》
团队方向包括:水污染控制、资源回收、环境催化化学、环境分析化学、环境毒理学、环境污染暴露与健康、环境健康。面向水污染控制与资源循环中的重大环境科学问题,围绕多相催化界面的物质与能量传递过程开展研究,重点揭示界面水/质子活化、电子转移、PCET与HAT等过程对活性物种生成及污染物反应路径的调控机制,揭示多位点催化界面结构、活性物种演化与污染物选择性转化之间的构效关系。
熟悉的主要仪器和技术方法:原位红外、原位电子顺磁共振、同步辐射原位XAS、同步辐射PDF、气相色谱-质谱联用。
欢迎对环境催化、新污染物治理、光/电催化和材料化学感兴趣的同学加入我们,无论你来自环境、化学、材料还是其他专业,只要保持好奇、乐于思考,都欢迎一起探索有趣而重要的科学问题。
希望在这里,我们既认真做科研,也认真生活;保持乐观与热爱,享受探索未知的快乐。愿你毕业时不仅有“学问”和一技之长,也依然眼里有光、心中有热爱,对科学好奇,对生活充满期待。
学科交叉合作意向:希望能与环境微生物、液相色谱-质谱联用、机器学习、代谢组学技术相关学科人才开展交叉合作。