论文著作:
论文方向一:焚烧灰渣处置与资源化利用
1. Xiong, Y.Y., Zhao, R.L., Xia, Y., Zhao, L., Li, B., Baxtiyarovich, A.F., Oleszczuk, P., Wiśniewska, M., Ma, Z.Y., Wang, L.*. 2026. Tailoring high-performance blend cementitious composites by co-recycling incineration fly ash, glass powder, and blast furnace slag. Waste Dispos. Sustain. Energy.
2. Shi, Y.Q., Wang, L.*. 2026. Hydrothermal treatment of typical combustion and incineration residues: State-of-the-art technologies and future perspectives. J. Environ. Manage. 415, 130628.
3. Zhang, X.L., Xia, Y., Liu, Z.Y., Shi, Y.Q., Xiong, Y.Y., Yan, J.H., Wang, L.*. 2026. Co-alkali activation of water-quenched slag and sewage sludge ash for high-strength and efflorescence-resistant geopolymer: Synthesis of hybrid gels. Chem. Eng. J. 528, 176757.
4. Xia, Y., Zhang, S.Y., Wang, L.*, Yan, J.H.. 2026. Upcycling coal gasification slag into low-carbon building materials via steam-assisted restructuring of silicoaluminates. Chem. Eng. J. 542, 178245.
5. Shi, Y.Q., Xia, Y., Song, Z.H., Wang, L.*, Yan, J.H.. 2026. Enhancing early-age performance of carbide slag-activated IFA-ISSA cementitious composites using nano-silica. J. Build. Eng. 122, 115800.
6. Wang, L.*, Ge, W.Z., Huang, G., Zhao, L., Baxtiyarovich, A.F., Wiśniewska, M., Oleszczuk, P.. 2026. Green synthesis of graphene by flash joule heating for reinforcing low-carbon cement-based composites. Environ. Res. 301, 124516.
7. Xia, Y., Wang, L.*, Zhao, R.L., Wu, J.P., Liu, Z.Y., Li, H.Y., Guo, B.L., Yan, J.H., 2026. Industrial gypsum-driven in-situ ettringite formation for enhanced all-solid-waste alkali-activated materials. Compos. Part B 309, 113077.
8. Wu, J.P., Li, H.Y., Xia, Y., Shi, Y.Q., Guan, Y.S., Chen, L., Wang, L.*, Yan, J.H., 2025. Recycling municipal solid waste incineration fly ash washing leachate as green activator in magnesium oxychloride cement. Constr. Build. Mater. 501, 144307.
9. Liu, Z.Y., Xia, Y., Li, H.Y., Shi, Y.Q., Wu, J.P., Yan, J.H., Wang, L.*. 2025. Synergistic utilization of municipal solid waste incineration fly ash and red mud as low-carbon alkali-activators in one-part geopolymer. Chem. Eng. J. 522, 168140.
10. Guan, Y.S., Xia, Y., Chen, L., Guo, B., Wang, L.*. 2025. Efficient adsorption of heavy metals using Friedel’s salt synthesized from municipal solid waste incineration fly ash leachate. Environ. Res. 285, 122330.
11. Xia, Y., Liu, Z.Y., Wang, L.*, Zhao, R.L., Huang, G., Shi, Y.Q., Zhou, Y.R., Yan, J.H.*. 2025. Recycling of MSWI fly ash into low-carbon supersulfated composites. Chem. Eng. J. 514, 163114.
12. Shi, Y.Q., Wang, L.*, Xia, Y., Zeng, Q., Wang, S.R., Yan, J.H.. 2025. The role of hydrothermal curing in activating reaction of incinerated sewage sludge ash for preparation of eco-blocks. Constr. Build. Mater. 471, 140701.
13. Xia, Y., Liu, Z., Huan, C., Song, Z., Guan, Y., Huang, G., Xu, M., Baxtiyarovich, A.F., Wang, L.*, Yan, J.H.*. 2025. Upcycling MSWI fly ash leachate as a novel modifier in low-carbon cement-free binders. Constr. Build. Mater. 460, 139785.
14. Xia, Y., Shi, D., Zhao, Y., Wang, J., Ma, X., Yu, K., Li, H., Wang, L.*, Yan, J.H.. 2025. Designing low‑carbon ultra‑high performance concrete with co‑combustion ash of sewage sludge and rice husk. Mater. Struct. 58, 7.
15. Yang, D.K., Kow, K.W., Meredith, W., Peng, Y.Q., Wang, L., Li, X., Zhang, G.L., Zhang, J.Z., Chen, G.F., Li, J.W., Wang, X.J., Wang, W.L., Mao, Y.P.*, Xu, M.X., 2025. Green synthesis of NaP1 zeolite from MSWI fly ash and silica-rich solid waste with superior Cu (II) removal efficiency. Chem. Eng. J. 522, 167475.
16. Lu, M., Xia, Y., Yan, J.H., Wang, L.*. 2024. Wet carbonation of MSWI fly ash for sustainable limestone calcined clay cement-type composites.Cement Concrete Comp. 156, 105866.
17. Xia, Y., Zhao, Y., Baxtiyarovich, A.F., Zhang, Y., Wang, L.*, Yan, J.H.*. 2024. Transforming MSWI fly ash into low-carbon and high-compatibility composites via designed calcium sulfoaluminate-based binders. J. Environ. Manage. 371, 123023.
18. Xia, Y., Liu, Z., Song, Z., Zhao, R., Wu, J., Wang, L.*, Yan, J.H.. 2024. Valorization of municipal solid waste incineration fly ash in low-carbon alkali-activated materials. Chem. Eng. J. 495, 153577.
19. Song, Z., Xia, Y.*, Zhang, Y., Xu, M., Wang, L.*, Yan, J.H.. 2024. Synergistic recycling of MSWI fly ash and incinerated sewage sludge ash into low-carbon binders. Constr. Build. Mater. 445, 137930.
20. Wang, L., Xia, Y., Zhang, Y.Y., Guo, B.L., Sun, C., Ma, B.*, Tsang, D.C.W.*, Yan, J.H.*. 2024. Introducing reactive magnesia to activate chloride/sulfate in waste incinerator fly ash for immobilization of potentially toxic elements. ACS Sustain. Chem. Eng. 12, 9602-9611. (Cover Paper)
21. Zhang, Y.Y., Zhu, X.H., Ma, B., Wang, L.*, Yan, J.H., Tsang, D.C.W.*. 2024. Insights into microstructural alterations in alkali-activated materials incorporating municipal solid waste incineration fly ash. Constr. Build. Mater. 425, 136129.
22. Lu, M., Ge, W., Xia, Y., Sun, C.*, Lin, X., Tsang, D.C.W., Ling, T.C., Hu, Y., Wang, L.*, Yan, J.H.. 2024. Upcycling MSWI fly ash into green binders via flue gas-enhanced wet carbonation. J. Clean. Prod. 440, 141013. (Highly Cited Paper)
23. Xia, Y., Liu, Y., Wang, L.*, Song, Z.H., Sun, C., Zhao, Y.D., Lu, S.Y., Yan, J.H.. 2023. Value-added recycling of sludge and sludge ash into low-carbon construction materials: current status and perspectives. Low-carbon Mater. Green Constr. 1, 23.
24. Sun, C., Ge, W., Zhang, Y., Wang, L.*, Xia, Y, Lin, X., Huang, Q., Lu, S., Tsang, D.C.W., Yan, J. 2023. Designing low-carbon cement-free binders for stabilization/solidification of MSWI fly ash. J. Environ. Manage. 339, 117938.
25. Wang, L., Zhang, Y., Chen, L., Guo, B.*, Tan, Y., Sasaki, K.*, Tsang, D.C.W.. 2022. Designing novel magnesium oxysulfate cement for stabilization/solidification of municipal solid waste incineration fly ash. J. Hazard Mater. 423, 127025.
26. Lin, X.Q., Ma, Y.F., Chen, T., Wang, L., Takaok, M., Pan, S.P., Zhang, H., Wu, A.J., Li, X.D., Yan, J.H.. 2022. PCDD/Fs and heavy metals in the vicinity of landfill used for MSWI fly ash disposal: Pollutant distribution and environmental impact assessment. Environ. Pollut. 312, 120083.
27. Sun, C., Wang, L.*, Lin, X.Q., Lu, S.Y., Huang, Q.X., Yan, J.H.. 2022. Low‑carbon stabilization/solidification of municipal solid waste incineration fly ash. Waste Dispos. Sustain. Energy 4, 69-74. (Invited Paper)
28. Sun, J., Wang, L.*, Yu, J., Guo, B., Chen, L., Zhang, Y., Wang, D., Shen, Z., Tsang, D.C.W.*. 2022. Cytotoxicity of stabilized/solidified municipal solid waste incineration fly ash. J. Hazard Mater. 424, 127369.
29. Zhang, Y., Wang, L.*, Chen, L., Ma, B., Zhang, Y., Ni, W., Tsang, D.C.W.*. 2021. Treatment of municipal solid waste incineration fly ash: State-of-the-art technologies and future perspectives. J. Hazard Mater. 411, 125132. (Highly Cited Paper)
30. Chen, L., Wang, Y.S., Wang, L.*, Zhang, Y., Li, J., Tong, L., Hu, Q., Dai, J.G., Tsang, D.C.W.*. 2021. Stabilisation/solidification of municipal solid waste incineration fly ash by phosphate-enhanced calcium aluminate cement. J. Hazard Mater. 408, 124404. (Highly Cited Paper)
31. Hossain, M.U., Wang, L.*, Chen, L., Tsang, D.C.W.*, Ng, S.T., Poon, C.S., Mechtcherine, V.. 2020. Evaluating the Environmental impacts of stabilization and solidification technologies for managing hazardous wastes through life cycle assessment: a case study of Hong Kong. Environ. Int. 145, 106139.
32. Tong, L.Z., He, J., Wang, F., Wang, Y., Wang, L., Tsang, D.C.W., Hu, Q., Hu, B., Tang, Y.. 2020. Evaluation of the BCR sequential extraction scheme for trace metal fractionation of alkaline municipal solid waste incineration fly ash. Chemosphere 249, 126115.
33. Chen, L., Wang, L.*, Cho, D.W., Tsang, D.C.W., Tong, L.Z., Zhou, Y.Y., Yang, J., Hu, Q., Poon, C.S.. 2019. Sustainable stabilization/solidification of municipal solid waste incinerator fly ash by incorporation of green materials. J. Clean. Prod. 222, 335-343. (HWCI: 18.95) (Highly Cited Paper)
论文方向二:二氧化碳封存与矿物碳化
1. Wang, Y.N., Yuan, J.J., Wang, L.*. 2026. Physical solvent regulation in liquid-liquid phase-change absorbents for CO2 capture: A critical review. Chem. Eng. J. 547, 181036.
2. Yuan, J.J., Wang, L.*. 2026. Coordination modulation versus interfacial engineering: A review of Ni-based single atoms and nanoparticles for photocatalytic CO2 reduction. Coordin. Chem. Rev. 562, 217979. (Impact Factor: 25.6)
3. Zhao, R.L., Wang, L.*, Xia, Y., Yuan, J.J., Yan, J.H.. 2026. Glycine-mediated steel slag upcycling: CO2 sequestration to functional materials. J. Environ. Chem. Eng. 14, 122712.
4. Zhou, H., Du, Y.F., Chen, J.F.*, Yan, W., Wei, Y., Xia, Y., Zhang, S. Li, N., Zhang, Y., Wang, L.*. 2025. Fabrication of crystal boundary enhanced magnesia from salt-lake brine avoiding pyrolytic CO2 emission. Ceram. Int. 51, 40459-40469.
5. Xu, W., Zhang, Y., Su, Y., Zhu, X.*, Wang, L., Tsang, D.C.W.*. 2024. Using waste to improve the weak: Recycled seashell as an ideal way to regulate the interfacial transition zone in biochar-cement composites. Constr. Build. Mater. 444, 137765.
6. Lu, M., Ge, W., Xia, Y., Sun, C.*, Lin, X., Tsang, D.C.W., Ling, T.C., Hu, Y., Wang, L.*, Yan, J.H.. 2024. Upcycling MSWI fly ash into green binders via flue gas-enhanced wet carbonation. J. Clean. Prod. 440, 141013. (Highly Cited Paper)
7. Wang, L., Chen, L., Poon, C.S., Wang, C.H.*, Ok, Y.S., Mechtcherine, V., Tsang, D.C.W.*. 2021. The roles of biochar and CO2 curing in sustainable magnesia cement-based composites. ACS Sustain. Chem. Eng. 9, 8603-8610.
8. Song, Q., Guo, M.Z., Wang, L., Ling, T.C.. 2021. Use of steel slag as sustainable construction materials: A review of accelerated carbonation treatment. Resour. Conserv. Recy. 173, 105740. (Highly Cited Paper)
9. Zhu, X., Tsang, D.C.W., Wang, L., Su, Z., Hou, D., Li, L., Shang, J. 2020. Machine learning exploration of the critical factors for CO2 adsorption capacity on porous carbon materials at different pressures. J. Clean. Prod. 273, 122915.
10. Liu, Y., Zhuge, Y.*, Chow, C.W.K., Keegan, A., Pham, P.N., Li, D., Qian, G., Wang, L.*. 2020. Recycling drinking water treatment sludge into eco-concrete blocks with CO2 curing: Durability and leachability. Sci. Total Environ. 746, 141182.
11. Chen, L., Wang, L.*, Tsang, D.C.W.*, Mechtcherine, V., Poon, C.S.. 2020. Efficacy of green alternatives and carbon dioxide curing in reactive magnesia cement-bonded particleboards. J. Clean. Prod. 258, 120997.
12. Wang, L., Chen, L., Tsang, D.C.W., Guo, B., Yang, J., Shen, Z.T., Hou, D.Y., Ok, Y.S., Poon, C.S.. 2020. Biochar as green additives in cement-based composites with carbon dioxide curing. J. Clean. Prod. 258, 120678. (HWCI: 13.76) (Highly Cited Paper)
13. Wang, L., Sarkar, B., Sonne, C., Ok, Y.S., Tsang, D.C.W.*. 2020. Soil and geologic formations as antidotes for CO2 sequestration? Soil Use Manag. 36, 355-357. (Invited Paper).
14. Wang, L., Chen, L., Provis J.L., Tsang, D.C.W., Poon, C.S.. 2020. Accelerated carbonation of reactive MgO and Portland cement blends under flowing CO2 gas. Cement Concrete Comp. 106, 103489. (HWCI: 17.15) (Highly Cited Paper)
15. Wang, L., Chen, L., Tsang, D.C.W., Yeung, T.Y.K., Li, J.S., Ding, S.M., Poon, C.S.. 2018. Green remediation of contaminated sediment by stabilization/solidification with industrial by-products and CO2 utilization. Sci. Total Environ. 631-632, 1321-1327.
16. Wang, L., Yeung, T.L.K., Tsang, D.C.W., Lau, A.Y.T., Poon, C.S.. 2017. Recycling contaminated sediment into eco-friendly paving blocks by a combination of binary cement and carbon dioxide curing. J. Clean. Prod. 164, 1279-1288.
17. Wang, L., Chen, S.S., Tsang, D.C.W., Poon, C.S., Dai, J.G.. 2017. CO2 curing and fibre reinforcement for green recycling of contaminated wood into high-performance cement-bonded particleboards. J. CO2 Util. 18, 107-116.
18. Wang, L., Chen, S.S., Tsang, D.C.W., Poon, C.S., Shih, K.M.. 2016. Recycling contaminated wood into eco-friendly particleboard using green cement and carbon dioxide curing. J. Clean. Prod. 137, 861-870.
论文方向三:复合材料热解与热解产物利用
1. Huang, G., Wang, L.*, Chen, L., Hu, Y.J., Baek, K., Wang, S.R., Yan, J.H. 2026. Developing Si/Al-rich biochar for higher incorporation in building materials: Enhanced mechanics and reduced carbon emissions. Sus. Chem. Pharm. 53, 102544.
2. Wang, L., Zhou, Y.R., Ren, L.*, Guo, Y.X., Zhang, K., Wang, F., Tsang, D.C.W., Cheng, F.Q., Yan, J.H.. 2026. Microwave pyrolysis for low-grade organic solid waste upcycling: State-of-the-art technologies and future perspectives. Renew. Sust. Energ. Rev. 237, 117037.
3. Ren, L., Zhou, Y.R., Li, J., Chen, S.S., Zhang, K., Guo, Y.X., Cheng, F.Q., Yan, J.H., Wang, L.*. 2026. Microwave co-pyrolysis of coal slime and sewage sludge: Synergistic mechanism of carbon-oxygen complementation. Chem. Eng. J. 527, 171955.
4. Wang, L.*,Ge, W.Z., Huang, G., Zhao, L., Baxtiyarovich, A.F., Wiśniewska, M., Oleszczuk, P.. 2026. Green synthesis of graphene by flash joule heating for reinforcing low-carbon cement-based composites, Environ. Res. 301, 124516.
5. Guo, B.L.*, Lu, D., Ye, P., Wang, K.X., Gao, Y.X., Qin, H.Y., Liu, Y., Zhang, T.S.*, Wang, L., Wang, C.Z.. 2026. Effect of modified biochar on the immobilization of Pb2+ and CrO42− in cement-based materials. Cement Concrete Comp. 166, 106398.
6. Li, H.Y., Wang, L.*. 2025. Acetolysis unlocks circular recycling for fibre-reinforced composites. Sci. Bull. 70, 3296-3298. (Impact Factor: 21.1)
7. Huang, G., Lu, Y., Zhao, X., Baxtiyarovich, A.F., Oleszczuk, P., Wiśniewska, M., Baek, K., Wang, L.*. 2025. Biochar-based low-carbon construction materials. Net Zero. 1, 1-5.
8. Zhu, X.H., Zhang, Y.Y., Xu, W.J., Ma, B.*, Li, J.Q., Wang, L., Yan, J.H., Tsang, D.C.W.*. 2025. Microstructural and pore network evolution of biochar-modified alkali-activated slag cement. J. Build. Eng. 115, 114584.
9. Li, H.Y., Zhang, N., Yang, J.*, Rahmasari, B.F.N., Du, Y.H., Wang, L.. 2025. From waste to worth: Biochar and hemp fiber synergy for carbon-sequestering and durable recycled aggregate concrete. Res. Environ. Sus. 22, 100265.
10. Zhang, Y.Y., Xu, W. Li, M., Zhu, X., Wang, L., Lee, B.Y.H., Ok, Y.S. Tsang, D.C.W.*. 2025. Hydrochar-cement composites: Valorisation of food waste digestate for sustainable construction. Constr. Build. Mater. 500, 144260.
11. Zhang, J.Y., Zhang, C., Zhang, Y.Y., Li, M.D., Zhu, X.H.*, Xia, Y., Wang, L., Tsang, D.C.W.*. 2025. Designing printable cement composites with porous biochar using an extended water film thickness theory. J. Build. Eng. 113, 114181.
12. Ye, P., Guo, B.L.*, Qin, H., Wang, C., Liu, Y., Chen, Y., Bian, P., Lu, D., Wang, L., Zhao, W., Yang, Y., Hong, L., Gao, P., Ma, P., Zhan, B., Yu, Q.. 2025.The state‑of‑the‑art review on biochar as green additives in cementitious composites: performance, applications, machine learning predictions, and environmental and economic implications. Biochar 7, 21.
13. Ye, P., Guo, B.L.*, Qin, H., Wang, C., Liu, Y., Chen, Y., Bian, P., Wang, C., Lu, D., Wang, L., Cao, Q., Zhao, W., Hong, L., Qiu, J., Gao, P., Zhan, B., Yu, Q.J.. 2025. Investigation of the effects of the biochar in different fractions on cement composites. Cement Concrete Comp. 162, 106142.
14. Zhang, Y., Li, M., Zhu, X., Wang, L., Masek, O., Sarmah, A.K., Tsang, D.C.W.. 2025. Enhanced thermal insulation of biochar-gypsum composites. Cement Concrete Comp. 159, 106013.
15. Wang, L., Nerella, V.N., Li, D., Zhang, Y.Y., Ma, B., Ivaniuk, E., Zhang, J., Zhu, X.H., Yan, J.H., Mechtcherine, V.*, Tsang, D.C.W.*. 2024. Biochar-augmented climate-positive 3D printable concrete. Commun. Mater. 5, 257.
16. Chen, L., Zhu, X., Zhang, Y., Wang, L.*, Ma, B., Zheng, Y., Poon, C.S., Yan, J.H., Tsang, D.C.W.*. 2024. Carbonation-enhanced interfacial transition zone in biochar-cement mortar. Constr. Build. Mater. 451, 138606.
17. Zhu, X.H., Zhang, Y.Y., Chen, L., Wang, L., Ma, B., Li, J.Q., Poon, C.S., Tsang, D.C.W.. 2023. Bonding mechanisms and micro-mechanical properties of the interfacial transition zone (ITZ) between biochar and paste in carbon-sink cement-based composites. Cement Concrete Comp. 139, 105004.
18. Yu, I.K.M., Chan, O.Y., Zhang, Q.Z., Wang, L., Wong, K.H.*, Tsang, D.C.W.*. 2023. Upcycling of spent tea leaves and spent coffee grounds into sustainable 3D-printing materials: natural plasticization and low-energy fabrication. ACS Sustain. Chem. Eng. 11, 6230-6240.
19. Chen, L., Zhang, Y., Wang, L.*, Ruan, S., Chen, J., Li, H., Yang, J., Mechtcherine, V., Tsang, D.C.W.*. 2022. Biochar-augmented carbon-negative concrete. Chem. Eng. J. 431, 133946. (Highly Cited Paper)
20. Chen, L., Wang, L.*, Zhang, Y., Ruan, S., Mechtcherine, V., Tsang, D.C.W.*. 2022. Roles of biochar in cement-based stabilization/solidification of municipal solid waste incineration fly ash. Chem. Eng. J. 430, 132972.
21. Zhang, Y.Y., He, M., Wang, L.*, Yan, J.H., Ma, B., Zhu, X., Ok, Y.S., Mechtcherine, V., Tsang, D.C.W.*, 2022. Biochar as construction materials for achieving carbon neutrality. Biochar 4, 59.
22. Chen, L., Zhang, Y.Y., Labianca, C., Wang, L.*, Ruan, C., Poon, C.S., Ok, Y.S., Tsang, D.C.W.. 2022. Carbon‑negative cement‑bonded biochar particleboards. Biochar 4, 58.
23. Wang, L., Chen, L., Poon, C.S., Wang, C.H.*, Ok, Y.S., Mechtcherine, V., Tsang, D.C.W.*. 2021. The roles of biochar and CO2 curing in sustainable magnesia cement-based composites. ACS Sustain. Chem. Eng. 9, 8603-8610.
24. Wang, L., Chen, L., Tsang, D.C.W., Kua, H.W., Yang, J., Ok, Y.S., Ding, S.M., Hou, D.Y., Poon, C.S.. 2019. The roles of biochar as green admixture for sediment-based construction products. Cement Concrete Comp. 104, 103348. (HWCI: 11.77) (Hot Paper)
25. Yang, X., Yu, I.K.M., Cho, D.W., Chen, S.S., Tsang, D.C.W., Shang, J., Yip, A.C.K., Wang, L., Ok, Y.S.. 2019. Tin-functionalized wood biochar as a sustainable solid catalyst for glucose isomerization in biorefinery. ACS Sustainable Chem. Eng. 7, 4851-4860.
26. Yu, I.K.M., Xiong, X.N., Tsang, D.C.W., Wang, L., Hunt, A.J., Song, H.C., Shang, J., Ok, Y.S., Poon, C.S.. 2019. Aluminium-biochar composites as sustainable heterogeneous catalysts for glucose isomerisation in a biorefinery. Green Chem. 21, 1267-1281. (HWCI: 24.27) (Highly Cited Paper)
27. Cao, L.C., Yu, I.K.M., Chen, S.S., Tsang, D.C.W., Wang, L., Xiong, X.N., Zhang, S., Ok, Y.S., Kwon, E.E., Song, H., Poon, C.S.. 2018. Production of 5-hydroxymethylfurfural from starch-rich food waste catalyzed by sulfonated biochar. Bioresource Technol. 252, 76-82. (Highly Cited Paper)
28. Chen, S.S., Wang, L., Yu, I.K.M., Tsang, D.C.W., Hunt, A.J., Jerome, F., Zhang, S.C., Ok, Y.S., Poon, C.S.. 2017. Valorization of lignocellulosic fibres of paper waste into levulinic acid using solid and aqueous brønsted acid. Bioresource Technol. 247, 387-394.
29. Yu, I.K.M., Tsang, D.C.W., Yip, A.C.K., Chen, S.S., Wang, L., Ok, Y.S., Poon, C.S.. 2017. Catalytic valorization of starch-rich food waste into hydroxymethylfurfural (HMF): Controlling relative kinetics for high productivity. Bioresource Technol. 237, 222-230.
30. Yu, I.K.M., Tsang, D.C.W., Chen, S.S., Wang, L., Hunt, A.J., Sherwood, J., Vigier, K.D.O., Jerome, F., Ok, Y.S., Poon, C.S.. 2017. Polar aprotic solvent-water mixture as the medium for catalytic production of hydroxymethylfurfural (HMF) from bread waste. Bioresource Technol. 245, 456-462.
31. Chen, S.S., Yu, I.K.M., Tsang, D.C.W., Yip, A.C.K., Khan, E., Wang, L., Ok, Y.S., Poon, C.S.. 2017. Valorization of cellulosic food waste into levulinic acid catalyzed by heterogeneous Brønsted acids: Temperature and solvent effects. Chem. Eng. J. 327, 328-335.
论文方向四:废弃物固化稳定化及建材化利用
1. Xiong, Y.Y., Zhao, R.L., Xia, Y., Zhao, L., Li, B., Baxtiyarovich, A.F., Oleszczuk, P., Wiśniewska, M., Ma, Z.Y., Wang, L.*. 2026. Tailoring high-performance blend cementitious composites by co-recycling incineration fly ash, glass powder, and blast furnace slag. Waste Dispos. Sustain. Energy.
2. Shi, Y.Q., Wang, L.*. 2026. Hydrothermal treatment of typical combustion and incineration residues: State-of-the-art technologies and future perspectives. J. Environ. Manage. 415, 130628.
3. Huang, G., Wang, L.*, Chen, L., Hu, Y.J., Baek, K., Wang, S.R., Yan, J.H. 2026. Developing Si/Al-rich biochar for higher incorporation in building materials: Enhanced mechanics and reduced carbon emissions. Sus. Chem. Pharm. 53, 102544.
4. Li, H.Y., Du, Y.H., Yang, J., Tam, V.W.Y., Zhang, N., Dong, W.K., Wang, L. 2026. Optimizing dispersion of graphene oxide/carbon nanotube hybrids for enhanced performance in nano-engineered cement composites. Nano Mater. Sci.
5. Zhang, X.L., Xia, Y., Liu, Z.Y., Shi, Y.Q., Xiong, Y.Y., Yan, J.H., Wang, L.*. 2026. Co-alkali activation of water-quenched slag and sewage sludge ash for high-strength and efflorescence-resistant geopolymer: Synthesis of hybrid gels. Chem. Eng. J. 528, 176757.
6. Xia, Y., Wang, L.*, Zhao, R.L., Wu, J.P., Liu, Z.Y., Li, H.Y., Guo, B.L., Yan, J.H.. 2026. Industrial gypsum-driven in-situ ettringite formation for enhanced all-solid-waste alkali-activated materials. Compos. Part B 309, 113077.
7. Li, H.Y., Xu, W.J., Zhang, C., Yoo, D.Y., Banthia, N., Wang, L., Yang, J., Tsang, D.C.W.. 2026. The road ahead in interfacial engineering of recycled fiber composites, Compos Part B: Eng. 317, 113613.
8. Tursunova, G., Atabaev, F., Gulrukh, B., Khomidov, F., Wang, L., Matmuratov, A., Khadzhiev, A.. 2026. Thermal activation of Karakalpakstan margels and pozzolan properties in their low-carbon composite portland cement. J. Ecol. Eng. 27, 333-349.
9. Li, H.Y., Du, Y.H.*, Yang, J.*, Lei, D.Y., Zhang, N., Wang, L.. 2026. Synergistic nano-reinforcement in strain-hardening cement composites: Unlocking the potential of graphene oxide/carbon nanotube hybrids. Compos. Part A-Appl. S. 201, 109409.
10. Khadzhiev A.S., Wang L., Atabaev F.B., Makhsudova N.D., Atashev E.A. 2026. Technological, economic and environmental aspects of the production of sulfate-resistant Portland cement clinker based on the mineral resources of Karakalpakstan. Mining & Mineral Processing 345, 84-94.
11. Liu, Z.Y., Xia, Y., Li, H.Y., Shi, Y.Q., Wu, J.P., Yan, J.H., Wang, L.*. 2025. Synergistic utilization of municipal solid waste incineration fly ash and red mud as low-carbon alkali-activators in one-part geopolymer. Chem. Eng. J. 522, 168140.
12. Zhou, H., Du, Y.F., Chen, J.F.*, Yan, W., Wei, Y., Xia, Y., Zhang, S. Li, N., Zhang, Y., Wang, L.*. 2025. Fabrication of crystal boundary enhanced magnesia from salt-lake brine avoiding pyrolytic CO2 emission. Ceram. Int. 51, 40459-40469.
13. Begzhanova G.B.*, Yakubzhanova Z.B., Wang L., Makhsudova N.D., Ruzmetova A.S.. 2025. Study of the suitability of industrial raw material resources as additives for Portland cement. Mining & Mineral Processing 341, 71-82.
14. Xia, Y., Shi, D.*, Wang, J., Zhao, Y., Liu, M., Yu, K., Zhang, Y., Ma, B., Wang, L.*. 2024. Effects of colemanite, heavy aggregates and lead fibers on physical mechanics and radiation shielding properties of high-performance radiation shielding concrete. J. Build. Eng. 96, 110496.
15. Hou, X., Miao, Z., Du, Y., Chen, J.*, Cao, Y., Yan, W., Xia, Y., Wang, L.*, Zhang S., Li N. 2024. Fabrication of Y2O3-doped MgO refractory raw materials based on magnesium hydroxide from salt-lake brine. Ceram. Int. 50, 42729-42738.
16. Xia, Y., Shi, D.*, Zhao, R., Yu, K., Liu, M., Mei, H.J., Xu, L., Zhao, Y., Wang, L.*, Yan, J.H.. 2024. Iron-rich industrial waste enhanced low-carbon radiation shielding functional composites. J. Clean. Prod. 449, 141649.
17. Li, H., Yang, J.*, Yang, D., Zhang, N., Nazar, S., Wang, L.. 2024. Fiber-reinforced polymer waste in the construction industry: a review. Environ. Chem. Lett. 22, 2777-2844.
18. Xu, W., Zhang, Y., Su, Y., Zhu, X.*, Wang, L., Tsang, D.C.W.*. 2024. Using waste to improve the weak: Recycled seashell as an ideal way to regulate the interfacial transition zone in biochar-cement composites. Constr. Build. Mater. 444, 137765.
19. Ye, P., Guo, B.*, Qin, H., Wang, C., Li, J., Chen, Y., Lu, D., Wang, L., Gao, P., Ma, P., Zhan, B., Yu, Q.. 2024. Investigation of the properties and sustainability of modified biochar-doped cement-based composite. Cement Concrete Comp. 153, 105684.
20. Chen, L., Zhu, X., Zheng, Y.*, Wang, L., Poon, C.S., Tsang, D.C.W.*. 2024. Development of high-strength lightweight concrete by utilizing food waste digestate based biochar aggregate. Constr. Build. Mater. 411, 134142.
21. Li, H., Yang, J.*, Wang, L., Li, L.H., Xia, Y., Köberle, T., Dong, W., Zhang, N., Yang, B., Mechtcherine, V.. 2023. Multiscale assessment of performance of limestone calcined clay cement (LC3) reinforced with virgin and recycled carbon fibers. Constr. Build. Mater. 406, 133228.
22. Xia, Y., Shi, D*, Wang, J., Zhao, Y., Yu, K., Liu, Y., Cui, H., Wang, L.*. 2023. Value-added recycling of cathode ray tube funnel glass into high-performance radiation shielding concrete. Resour. Conserv. Recy. 199, 107252.
23. Xia, Y., Liu, Y., Wang, L.*, Song, Z.H., Sun, C., Zhao, Y.D., Lu, S.Y., Yan, J.H.. 2023. Value-added recycling of sludge and sludge ash into low-carbon construction materials: current status and perspectives. Low-carbon Mater. Green Constr. 1, 23.
24. Liu, Y., Zhuge, Y.*, Chen, X., Duan, W.W., Fan, R., Outhred, L., Wang, L.*. 2023. Micro-chemomechanical properties of red mud binder and its effect on concrete. Compos. Part B-Eng. 258, 110688.
25. Wang, L.*, Zhu, Z., Ahmed, A.H., Liebscher, M., Zhu, X.H., Mechtcherine, V.*. 2023. Self-healing behavior of high-strength strain-hardening cement-based composites (HS-SHCC) blended with limestone calcined clay cement (LC3). Constr. Build. Mater., 370 130633.
26. Zhu, X.H., Zhang, Y.Y., Chen, L., Wang, L., Ma, B., Li, J.Q., Poon, C.S., Tsang, D.C.W. 2023. Bonding mechanisms and micro-mechanical properties of the interfacial transition zone (ITZ) between biochar and paste in carbon-sink cement-based composites. Cement Concrete Comp. 139, 105004.
27. Liu, Y., Zhuge, Y., Fan, W., Duan, W., Wang, L.. 2022. Recycling industrial wastes into self-healing concrete: A review. Environ. Res. 214, 113975.
28. Zhang, Y.Y., He, M., Wang, L.*, Yan, J.H., Ma, B., Zhu, X., Ok, Y.S., Mechtcherine, V., Tsang, D.C.W.*. 2022. Biochar as construction materials for achieving carbon neutrality. Biochar 4, 59.
29. Chen, L., Zhang, Y.Y., Labianca, C., Wang, L.*, Ruan, C., Poon, C.S., Ok, Y.S., Tsang, D.C.W.. 2022. Carbon‑negative cement‑bonded biochar particleboards. Biochar 4, 58.
30. Zhang, Y.Y., Wan, Z.H., Wang, L.*, Guo, B.L., Ma, B.*, Chen, L., Tsang D.C.W.*. 2022. Designing magnesium phosphate cement for stabilization/solidification of Zn-rich electroplating sludge. Environ. Sci. Technol. 56, 9398-9407.
31. Chen, L., Zhang, Y., Wang, L.*, Ruan, S., Chen, J., Li, H., Yang, J., Mechtcherine, V., Tsang, D.C.W.*, 2022. Biochar-augmented carbon-negative concrete. Chem. Eng. J. 431, 133946. (Highly Cited Paper)
32. Zhang, Y., Labianca, C., Chen, L., De Gisi, S., Notarnicola, M., Guo, B., Sun, J., Ding, S., Wang, L.*. 2021. Sustainable ex-situ remediation of contaminated sediment: A review. Environ. Pollut. 287, 117333.
33. Wang, L., Rehman, N.U., Curosu, I.*, Zhu, Z., Beigh, M.A.B., Liebscher, M., Chen, L., Tsang, D.C.W., Hempel, S., Mechtcherine, V.. 2021. On the use of limestone calcined clay cement (LC3) in high-strength strain-hardening cement-based composites (HS-SHCC). Cement Concrete Res. 114, 106421.
34. Guo, B., Tan, Y., Wang, L.*, Chen, L., Wu, Z., Sasaki, K., Mechtcherine, V., Tsang, D.C.W. 2021. High-efficiency and low-carbon remediation of zinc contaminated sludge by magnesium oxysulfate cement. J. Hazard Mater. 408, 124486. (Highly Cited Paper)
35. Liu, Y., Zhuge, Y., Chow, C.W.K., Keegan, A., Ma, J., Hall, C., Li, D., Pham, P.N., Huang, J., Duan, W., Wang, L.. 2021. Cementitious composites containing alum sludge ash: An investigation of microstructural features by an advanced nanoindentation technology. Constr. Build. Mater. 299, 124286.
36. Wang, F., Xu, J., Yin, H., Zhang, Y., Pan, H., Wang, L.. 2021. Sustainable stabilization/solidification of the Pb, Zn, and Cd contaminated soil by red mud-derived binders. Environ. Pollut. 284, 117178.
37. Li, J.S., Chen, L., Zhan, B., Wang, L., Tsang, D.C.W., Poon, C.S.. 2021. Sustainable stabilization/solidification of arsenic-containing soil by blast slag and cement blends. Chemosphere 271, 129868.
38. Hossain, M.U., Wang, L.*, Chen, L., Tsang, D.C.W.*, Ng, S.T., Poon, C.S., Mechtcherine, V.. 2020. Evaluating the Environmental impacts of stabilization and solidification technologies for managing hazardous wastes through life cycle assessment: a case study of Hong Kong. Environ. Int. 145, 106139.
39. Shang, X.Y., Yang, J.W., Song, Q., Wang, L.*. 2020. Efficacy of modified rice straw fibre on properties of cementitious composites. J. Clean. Prod. 276, 124184.
40. Wang, L., Geddes, D.A., Walkley, B., Provis, J.L., Mechtcherine, V., Tsang, D.C.W.*. 2020. The role of zinc in metakaolin-based geopolymers. Cement Concrete Res. 136, 106194.
41. Wang, L., Chen, L., Guo, B., Tsang, D.C.W.*, Huang, L., Ok, Y.S., Mechtcherine, V.. 2020. Red mud-enhanced magnesium phosphate cement for remediation of Pb and As contaminated soil. J. Hazard Mater. 400, 123317.
42. Wang, L., Tsang, D.C.W., Zhou, Y.Y., Rinklebe, J., Song, H., Kown, E.E., Baek, K., Ok, Y.S.. 2019. Mechanistic insights into red mud, blast furnace slag, or metakaolin-assisted stabilization/solidification of arsenic-contaminated sediment. Environ. Int. 133, 105247.
43. Wang, L., Chen, L., Tsang, D.C.W., Kua, H.W., Yang, J., Ok, Y.S., Ding, S.M., Hou, D.Y., Poon, C.S.. 2019. The roles of biochar as green admixture for sediment-based construction products. Cement Concrete Comp. 104, 103348. (HWCI: 11.77) (Hot Paper)
44. Wang, L., Cho, D.W., Tsang, D.C.W., Cao, X.D., Hou, D.Y., Shen, Z.T., Alessi, D.S., Ok, Y.S., Poon, C.S.. 2019. Green remediation of As and Pb contaminated soil using cement-free clay-based stabilization/solidification. Environ. Int. 126, 336-345. (HWCI: 34.35) (Hot Paper& Highly Cited Paper) (Most Cited Paper)
45. Wang, L., Chen, L., Cho, D.W., Tsang, D.C.W., Yang, J., Hou, D.Y., Baek, K., Kua, H.W., Poon, C.S.. 2019. Novel synergy of Si-rich minerals and reactive MgO for stabilization/solidification of contaminated sediment. J. Hazard Mater. 365, 695-706. (HWCI: 25.58) (Hot Paper& Highly Cited Paper)
46. Shaban, W.M., Yang, J., Su, H.L., Liu, Q.F., Tsang, D.C.W., Wang, L., Xie, J.H., Li, L.J.. 2019. Properties of recycled concrete aggregates strengthened by different types of pozzolan slurry. Constr. Build. Mater. 216, 632-647.
47. Fang, X.L., Wang, L., Poon, C.S., Baek, K., Tsang, D.C.W., Kwok, S.K.. 2018. Transforming waterworks sludge into controlled low-strength material: Bench-scale optimization and field test validation. J. Environ. Manage. 232, 254-263.
48. Hossain, M.U., Wang, L., Yu, I.K.M., Tsang, D.C.W., Poon, C.S.. 2018. Environmental and technical feasibility study of upcycling wood waste into cement-bonded particleboard. Constr. Build. Mater. 173, 474-480.
49. Li, J.S., Wang, L., Cui, J.L., Tsang, D.C.W., Poon, C.S., Li, X.D.. 2018. Effects of low-alkalinity binders on stabilization/solidification of geogenic As-containing soils: Spectroscopic investigation and leaching tests. Sci. Total Environ. 631-632, 1486-1494.
50. Wang, L., Chen, L., Tsang, D.C.W., Li, J., Poon, C.S., Baek, K., Hou, D.Y., Ding, S.M.. 2018. Recycling dredged sediment into fill materials, partition blocks, and paving blocks: technical and economic assessment. J. Clean. Prod. 199, 69-76.