2023 |
Liu, S., Vongsvivut, J. P., Wang, Y., Zhang, R., Yang, F., Zhang, S., . . . Guo, Z. (2023). Monolithic Phosphate Interphase for Highly Reversible and Stable Zn Metal Anode. Angewandte Chemie International Edition, 62(4), e202215600-1-e202215600-11. DOI Scopus14 WoS3 Europe PMC1 |
2023 |
Lyu, Y., Yuwono, J., Wang, P., Wang, Y., Yang, F., Liu, S., . . . Guo, Z. (2023). Organic pH Buffer for Dendrite-Free and Shuttle-Free Zn-I₂ Batteries.. Angew Chem Int Ed Engl, 62(21), e202303011. DOI |
2023 |
Wang, Y., Wang, Z., Pang, W. K., Lie, W., Yuwono, J. A., Liang, G., . . . Guo, Z. (2023). Solvent control of water O-H bonds for highly reversible zinc ion batteries. Nature Communications, 14(1), 1-11. DOI |
2022 |
Wang, Y., Wang, Z., Yang, F., Liu, S., Zhang, S., Mao, J., & Guo, Z. (2022). Electrolyte engineering enables high performance zinc-ion batteries. Small, 18(43), 2107033-1-2107033-20. DOI Scopus58 WoS57 Europe PMC6 |
2022 |
Mao, J., Wang, C., Lyu, Y., Zhang, R., Wang, Y., Liu, S., . . . Guo, Z. (2022). Organic electrolyte design for practical potassium-ion batteries. Journal of Materials Chemistry A, 10(37), 19090-19106. DOI Scopus18 WoS16 |
2022 |
Wang, Z., Wang, Y., Li, B., Bouwer, J. C., Davey, K., Lu, J., & Guo, Z. (2022). Non-Flammable Ester Electrolyte with Boosted Stability Against Li for High-Performance Li metal Batteries. Angewandte Chemie International Edition, 61(41), e202206682-1-e202206682-10. DOI Scopus20 WoS16 Europe PMC3 |
2022 |
Wang, Z., Wang, Y., Li, B., Bouwer, J. C., Davey, K., Lu, J., & Guo, Z. (2022). Non‐Flammable Ester Electrolyte with Boosted Stability Against Li for High‐Performance Li Metal Batteries. Angewandte Chemie, 134(41). DOI |
2022 |
Yang, F., Yuwono, J. A., Hao, J., Long, J., Yuan, L., Wang, Y., . . . Guo, Z. (2022). Understanding H₂ evolution electrochemistry to minimize solvated water impact on zinc anode performance. Advanced Materials, 34(45), 2206754-1-2206754-12. DOI Scopus16 WoS13 |
2021 |
Wang, Z., Wang, Y., Wu, C., Pang, W. K., Mao, J., & Guo, Z. (2021). Constructing nitrided interfaces for stabilizing Li metal electrodes in liquid electrolytes. Chemical Science, 12(26), 8945-8966. DOI Scopus39 WoS37 Europe PMC5 |
2021 |
Liu, S., Mao, J., Pang, W. K., Vongsvivut, J., Zeng, X., Thomsen, L., . . . Guo, Z. (2021). Tuning the electrolyte solvation structure to suppress cathode dissolution, water reactivity, and Zn dendrite growth in zinc‐ion batteries. Advanced Functional Materials, 31(38), 2104281-1-2104281-11. DOI Scopus156 WoS148 |
2021 |
Zeng, X., Mao, J., Hao, J., Liu, J., Liu, S., Wang, Z., . . . Guo, Z. (2021). Electrolyte design for in situ construction of highly Zn²⁺-conductive solid electrolyte interphase to enable high-performance aqueous Zn-Ion batteries under practical conditions. Advanced Materials, 33(11), 1-11. DOI Scopus293 WoS291 Europe PMC17 |
2021 |
Wang, Y., Wang, Z., Zhao, L., Fan, Q., Zeng, X., Liu, S., . . . Guo, Z. (2021). Lithium metal electrode with increased air stability and robust solid electrolyte interphase realized by silane coupling agent modification. Advanced Materials, 33(14), 2008133-1-2008133-9. DOI Scopus83 WoS82 Europe PMC9 |
2020 |
Wang, Z., Wang, Y., Zhang, Z., Chen, X., Lie, W., He, Y. B., . . . Guo, Z. (2020). Building artificial solid-electrolyte interphase with uniform intermolecular ionic bonds toward dendrite-free lithium metal anodes. Advanced Functional Materials, 30(30), 2002414-1-2002414-10. DOI Scopus91 WoS84 |
2018 |
Wang, Y., Wang, Z., Lei, D., Lv, W., Zhao, Q., Ni, B., . . . He, Y. B. (2018). Spherical Li Deposited inside 3D Cu Skeleton as Anode with Ultrastable Performance. ACS Applied Materials and Interfaces, 10(24), 20244-20249. DOI Scopus95 WoS93 Europe PMC5 |
2018 |
Wang, Z., Wang, Y., Wang, W., Yu, X., Lv, W., Xiang, B., & He, Y. B. (2018). High-level heteroatom doped two-dimensional carbon architectures for highly efficient lithium-ion storage. Frontiers in Chemistry, 6(APR), 1-10. DOI Scopus30 WoS6 Europe PMC1 |
2018 |
Wang, Y., Wang, Z., Yu, X., Li, B., Kang, F., & He, Y. B. (2018). Hierarchically structured carbon nanomaterials for electrochemical energy storage applications. Journal of Materials Research, 33(9), 1058-1073. DOI Scopus28 WoS27 |
2018 |
Lei, D., Shi, K., Ye, H., Wan, Z., Wang, Y., Shen, L., . . . He, Y. -B. (2018). Progress and Perspective of Solid-State Lithium-Sulfur Batteries. Advanced Functional Materials, 28(38), 1707570. DOI |