2024 | 2023 | 2022 | 2021 | 2020 | 2019 | 2018 | 2017 | 2016 | 2015 | 2014 | 2013 | 2012-2003 |
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2024 | |
128 | Shan, Shuhua; Parekh, Mihir; Kou, Rong; Wang, Donghai; Rahn, Christopher. "Increasing the Cycle Life of Zinc Metal Anodes and Nickel-Zinc Cells Using Flow-through Alkaline Electrolytes." Journal of The Electrochemical Society, 2024, submitted. [Link] |
127 | Li, G.-X.; Lennartz, P.; Koverga, V.; Kou, R.; Nguyen, A.; Jiang, H.; Liao, M.; Wang, D.; Dandu, N.; Zepeda, M.; Wang, H.; Wang, K.; Ngo, A. T.; Brunklaus, G.; Wang, D. “Interfacial Solvation-Structure Regulation for Stable Li Metal Anode by a Desolvation Coating Technique.” Proceedings of the National Academy of Sciences, 2024, 121(4). [Link] |
2023 | |
126 | Shan, S.; Parekh, M. N.; Kou, R.; Wang, D.; Rahn, C. D. "Aqueous Zinc Sulfate Flow Through a Copper Mesh Anode Improves Zinc Metal Electrodeposition Morphology and Impedance." Journal of the Electrochemical Society, 2023, 170(9). [Link] |
125 | Le, L.; Liao, M.; Nguyen, A.; Wang, D. "Promoting a Stable Interface Using Localized High-Concentration Carbonate-Based Electrolyte for Li Metal Batteries. ACS Appl. Mater. Interfaces, 2023, 15(31). [Link] |
124 | Wang, D.; Jhang, L.J., Kou, R.; Liao, M.; Zheng, S.; Jiang, H.; Shi, P.; Li, G.X.; Meng, K.; Wang, D. "Realizing high-capacity all-solid-state lithium-sulfur batteries using a low-density inorganic solid-state electrolyte." Nature Communications, 2023, 14, 1895. [Link] |
123 | Jiang, H.; Tang, L.; Fu, Y.; Wang, S.; Sandstrom, S. K.; Scida, A. M.; Li, G.; Hoang, D.; Hong, J. J.; Chiu, N.-C.; Stylianou, K. C.; Stickle, W. F.; Wang, D.; Li, J.; Greaney, P. A.; Fang, C.; Ji, X. "Chloride Electrolyte Enabled Practical Zinc Metal Battery with a Near-Unity Coulombic Efficiency." Nature Sustainability, 2023, 6, 806-815. [Link] |
122 | Jhang, L.-J.; Wang, D.; Silver, A.; Li, X.; Reed, D.; Wang, D. Stable All-Solid-State Sodium-Sulfur Batteries for Low-Temperature Operation Enabled by Sodium Alloy Anode and Confined Sulfur Cathode. Nano Energy, 2023, 105, 107995. [Link] |
2022 | |
121 | Cleary, T.; Nozarijouybari, Z.; Wang, D.; Wang, D.; Rahn, C.; Fathy, H. An Experimentally Parameterized Equivalent Circuit Model of a Solid-State Lithium-Sulfur Battery. Batteries, 2022, 8(12), 269. [Link] |
120 | Li, G.-X., Jiang, H., Kou, R., Wang, D., Nguyen, A., Liao, M., Shi, P., Silver, A., Wang, D., A Superior Carbonate Electrolyte for Stable Cycling Li Metal Batteries Using High Ni Cathode. ACS Energy Letters, 2022, 7(7), 2282-2288. [Link] |
119 | Nguyen, A., Zuo, P., Jiang, H., Wang, C., Wang, D., Dual Protective Mechanism of AlPO4 Coating on High-Nickel Cathode Material for High Energy Density and Long Cycle Life Lithium-Ion Batteries. Journal of the Electrochemical Society, 2022, 169(5), 050523. [Link] |
2021 | |
118 | Song, J., Si, Y., Guo, W., Wang, D., Fu, Y., Organosulfide-Based Deep Eutectic Electrolyte for Lithium Batteries, Angewandte Chemie International Edition, 2021, 60(18), 9881–9885. [Link] |
117 | Xu, C., Cleary, T. P., Wang, D., Li, G., Rahn, C., Wang, D., Rajamani, R., Fathy, H. K., Online state estimation for a physics-based Lithium-Sulfur battery model, Journal of Power Sources, 2021, 489, 229495 [Link] |
116 | Guo, W., Zhang, W., Si, Y., Wang, D., Fu, Y., Manthiram, A, Artificial dual solid-electrolyte interfaces based on in situ organothiol transformation in lithium sulfur battery, Nature Communications, 2021, 12, 1, 1-13[Link] |
115 | Chen, Q., Guo, W., Wang, D., Fu, Y., A self-healing Li-S redox flow battery with alternative reaction pathways, Journal of Materials Chemistry A, 2021, 9(21), 12652–12658. [Link] |
114 | Yue, C., Sun, S., Jang, M., Park, E., Son, B., Son, H., Liu, Z., Wang, D., Paik, U., Song, T., A robust solid electrolyte interphase layer coated on polyethylene separator surface induced by Ge interlayer for stable Li-metal batteries, Electrochimica Acta, 2021, 370, 137703. [Link] |
113 | Alzahrani, A. S., Otaki, M., Wang, D., Gao, Y., Arthur, T. S., Liu, S., & Wang, D., Confining Sulfur in Porous Carbon by Vapor Deposition to Achieve High-Performance Cathode for All-Solid-State Lithium-Sulfur Batteries, ACS Energy Letters, 2021, 6(2), 413–418. [Link] |
2020 | |
112 | Gao, Y., Wang, D., Shin, Y. K., Yan, Z., Han, Z., Wang, K., Hossain, M. J., Shen, S., AlZahrani, A., van Duin, Adri C. T., Mallouk, T. E., & Wang, D., Stable metal anodes enabled by a labile organic molecule bonded to a reduced graphene oxide aerogel, Proceedings of the National Academy of Sciences of the United States of America, 2020, 117(48), 30135–30141. [Link] |
111 | Gao, Y., Rojas, T., Wang, K., Liu, S., Wang, D. W., Chen, T., H., Wang, H. Y., Ngo, A. T., Wang, D. H., Low-temperature and high-rate-charging lithium metal batteries enabled by an electrochemically active monolayer-regulated interface, Nature Energy, 2020, 5, 534-542. [Link] |
110 | Li, L. Z., Self, E. C., Darbar, D., Zou, L. F., Bhattacharya, I., Wang, D. H., Nanda, J., Wang, C. M., Hidden Subsurface Reconstruction and Its Atomic Origins in Layered Oxide Cathodes, Nano Letters, 2020, 20, 4, 2756-2762. [Link] |
109 | Ge, S. H., Leng, Y. J., Liu, T., Longchamps, S. R., Yang, X. G., Gao, Y., Wang, D. W., Wang, D. W., Wang, D. H., Wang, C. Y., A new approach to both high safety and high performance of lithium-ion batteries, Science Advances, 2020, 6(9), 7633. [Link] |
108 | Ma, J., Gonzalez, C., Huang, Q. Q., Farese, J., Rahn, C., Frecker, M., Wang, D. H., Multifunctional Li(Ni0.5Co0.2Mn0.3) O2-Si batteries with self-actuation and self-sensing, Journal of Intelligent Material Systems and Structures, 2020, 31(6), 860-868. [Link] |
2019 | |
107 | Huang, Q. Q., Song, J. X., Gao, Y., Wang, D. W., Liu, S., Peng, S. F., Usher, C., Goliaszewski, A., Wang, D. H., Supremely elastic gel polymer electrolyte enables a reliable electrode structure for silicon-based anodes, Nature Communications, 2019, 10, 1, 1-7. [Link] |
106 | Yang, X. G., Liu, T., Gao, Y., Ge, S. H., Leng, Y. J., Wang, D. H., Wang, C. Y., Asymmetric Temperature Modulation for Extreme Fast Charging of Lithium-Ion Batteries, Joule, 2019, 3, 12, 3002-3019. [Link] |
105 | Li, L. Z., Yu, J. G., Darbar, D., Self, E. C., Wang, D. H., Nanda, J., Bhattacharya, I., Wang, C. M., Atomic-Scale Mechanisms of Enhanced Electrochemical Properties of Mo-Doped Co-Free Layered Oxide Cathodes for Lithium-Ion Batteries, ACS Energy Letters, 2019, 4,10, 2540-2546. [Link] |
104 | Wang, J. W., Zhou, B., Zhao, Y., Chen, T. H., Huang, Q. Q., Wang, D. H., A sandwich-type sulfur cathode based on multifunctional ceria hollow spheres for high-performance lithium–sulfur batteries, Materials Chemistry Frontiers, 2019, 3, 1317-1322. [Link] |
103 | Zhou, L., Yao, L., Li, S. X., Zai, J. T., Li, S. T., He, Q. Q., He, K., Li, X. M., Wang, D. H., Qian, X. F., The combination of intercalation and conversion reactions to improve the volumetric capacity of the cathode in Li–S batteries, Journal of Materials Chemistry A, 2019, 7, 3618-3623. [Link] |
102 | Zhao, Y. M., Wang, D. W., Gao, Y., Chen, T. H., Huang, Q. Q., Wang, D. H., Stable Li metal anode by a polyvinyl alcohol protection layer via modifying solid-electrolyte interphase layer, Nano Energy, 2019, 64, 103893. [Link] |
101 | Zhao, Y. M., Li, G. X., Gao, Y., Wang, D. W., Huang, Q. Q., Wang, D. H., Stable Li Metal Anode by a Hybrid Lithium Polysulfidophosphate/Polymer Cross-Linking Film, ACS Energy Letters, 2019, 4, 6, 1271-1278. [Link] |
100 | Li, G. X., Liu, Z., Wang, D. W., He, X., Liu, S., Gao, Y., AlZahrani, A., Kim, S. H., Chen, L. Q., Wang, D. H., Electrokinetic Phenomena Enhanced Lithium‐Ion Transport in Leaky Film for Stable Lithium Metal Anodes, Advanced Energy Materials, 2019, 9, 1900704. [Link] |
99 | Dai, F., Yi, R., Yang, H., Zhao, Y. M., Luo, L. L., Gordin, M. L., Sohn, H., Chen, S. R., Wang, C. M., Zhang, S. L., Wang, D. H., Minimized volume expansion in hierarchical porous silicon upon lithiation, ACS Applied Materials & Interfaces, 2019, 11(14), 13257-13263. [Link] |
98 | Gao, Y., Yan, Z. F., Gray, J. L., He, X., Wang, D. W., Chen, T. H., Huang, Q. Q., Li, Y. G. C., Wang, H. Y., Kim S. H., Mallouk, T. E., Wang, D. H., Polymer-inorgnic solid-electrolyte interphase for stable lithium metal batteries under lean electrolyte conditions, Nature Materials, 2019, 18, 384-389. [Link] |
97 | Yu, Z. X., Shang, S. L., Wang, D. W., Li, Y. G. C., Yennawar, H. P., Li, G. X., Huang, H. T., Gao, Y., Mallouk, T. E., Liu, Z. K., Wang, D. H., Synthesis and understanding of Na11Sn2PSe12 with enhanced ionic conductivity for all-solid-state Na-ion battery, Energy Storage Materials, 2019, 17, 70-77. [Link] |
2018 | |
96 | Xiong, S. Z., Regula, M., Wang, D. H., Song, J. X., Toward Better Lithium-Sulfur Batteries: Functional Non-aqueous Liquid Electrolytes, Electrochemical Energy Reviews, 2018, 1(3), 388-402. [Link] |
95 | Li, G. X., Liu, Z., Huang, Q. Q., Gao, Y., Regula, M., Wang, D. W., Chen, L. Q., Wang, D. H., Stable metal battery anodes enabled by polyethylenimine sponge hosts by way of electrokinetic effects, Nature Energy, 2018, 3, 1076-1083. [Link] |
94 | Gao, Y., Wang, D. W., Li, Y. G., Yu, Z. X., Mallouk, T. E., Wang, D. H., Salt-based organic-inorganic nanocomposites: towards a stable lithium metal/Li10GeP2S12 solid electrolyte interface, Angewandte Chemie International Edition, 2018, 57, 13608. [Link] |
93 | Chen, S. R., Wang, D. W., Zhao, Y. M., Wang, D. H., Superior Performance of a Lithium-Sulfur Battery Enabled by a Dimethyl Trisulfide Containing Electrolyte, Small methods, 2018, 2, 1800038. [Link] |
92 | Yu, Z. X., Shang, S. L., Gao, Y., Wang, D. W., Li, X. L., Liu, Z. K., Wang, D. H., A quaternary sodium superionic conductor - Na10.8Sn1.9PS11.8, Nano Energy, 2018, 47, 325-330. [Link] |
91 | Li, G. X., Huang, Q. Q., He, X., Gao, Y., Wang, D. W., Kim, S. H., Wang, D. H., Self-Formed Hybrid Interphase Layer on Lithium Metal for High Performance Lithium-Sulfur Batteries, ACS Nano, 2018, 12(2), 1500-1507. [Link] |
2017 | |
90 | Gao, Y., Yi, Ran., Li, Y. C., Song, J. X., Chen, S. R., Huang, Q. Q., Mallouk, T. E., Wang, D. H., General Method of Manipulating Formation, Composition, and Morphology of Solid-Electrolyte Interphases for Stable Li-Alloy Anodes, Journal of The American Chemical Society, 2017, 139(48), 17359-17367. [Link] |
89 | Li, G. X., Gao, Y., He, X., Huang, Q. Q., Chen, S. R., Kim, S. H., Wang, D. H., Organosulfide-plasticized solid-electrolyte interphase layer enables stable lithium metal anodes for long-cycle lithium-sulfur batteries, Nature Communications, 2017, 850. [Link] |
88 | Gao, Y., Zhao, Y. M., Li, Y. C., Huang, Q. Q., Mallouk, T. E., Wang, D. H., Interfacial Chemistry Regulation via a Skin-Grafting Strategy Enables High-Performance Lithium-Metal Batteries, Journal of the American Chemical Society, 2017, 139(43), 15288-15291. [Link] |
87 | Yu, Z. X., Song, J. X., Wang, D. W., Wang, D. H., Advanced anode for sodium-ion battery with promising long cycling stability achieved by tuning phosphorus-carbon nanostructures, Nano Energy, 2017, 40, 550-558. [Link] |
86 | Tang, D. H., Yi, R., Zhang, W. T., Qiao, Z. N., Liu, Y. L., Huo, Q. S., Wang, D. H., Bottom-up synthesis of mesoporous carbon/silicon carbide composite at low temperature for supercapacitor electrodes, Materials Letters, 2017, 198, 140-143. [Link] |
85 | Shang, S. L., Yu, Z. X., Wang, Y., Wang, D. H., Liu, Z. K., Origin of Outstanding Phase and Moisture Stability in a Na3P1-xAsxS4 Superionic Conductor, ACS Applied Materials & Interfaces, 2017, 9(19), 16261-16269. [Link] |
84 | Chen, S. R., Yu, Z. X., Gordin, M., Ran, Y., Song, J. X., Wang, D. H., A Fluorinated Ether Electrolyte Enabled High Performance Pre-lithiated Graphite/Sulfur Batteries, ACS Applied Materials & Interfaces, 2017, 9(8), 6959-6966. [Link] |
83 | Yu, Z. X., Shang, S. L., Seo, J. H., Wang, D. W., Luo, X. Y., Huang, Q. Q., Chen, S. R., Lu, J., Li, X. L., Liu, Z. K., Wang, D. H., Exceptionally high ionic conductivity in Na3P0.62As0.38S4 with improved moisture stability for solid-state sodium-ion batteries, Advanced Materials, 2017, 29(16). [Link] |
82 | Chen, S. R., Gao, Y., Yu, Z. X., Gordin, M. L., Song, J. X., Wang, D. H., High capacity of lithium-sulfur batteries at low electrolyte/sulfur ratio enabled by an organosulfide containing electrolyte. Nano Energy, 2017, 31, 418. [Link] |
2016 | |
81 | Chen, G., Wang, S. P., Yi, R., Tan, L. F., Li, H. B., Zhou, M., Yan, L. T., Jiang, Y. B., Tan, S., Wang, D. H., Deng, S. G., Meng, X. W., Luo, H. M., Facile synthesis of hierarchical MoS2-carbon microspheres as a robust anode for lithium ion batteries. Journal of Materials Chemistry A, 2016, 4, 9653. [Link] |
80 | Sohn, H., Kim, D. H., Yi, R., Tang, D. H., Lee, S. E., Jung, Y. S., Wang, D. H., Semimicro-size agglomerate structured silicon-carbon composite as an anode material for high performance lithium-ion batteries. Journal of Power Sources, 2016, 344, 128. [Link] |
79 | Choi, J. W., Wang, D. H., Wang, D. W. Nanomaterials for Energy Conversion and Storage. ChemNanoMat, 2016, 2, 560. [Link] |
78 | Tang, D. H., Huang, Q. Q., Yi, R., Dai, F., Gordin, M. L., Hu, S., Chen, S. R., Yu, Z. X., Sohn, H. S., Song, J. X., Wang, D. H. Room-Temperature Synthesis of Mesoporous Sn/SnO2 Composite as Anode for Sodium-Ion Batteries. European Journal of Inorganic Chemistry, 2016, 2016, 1950. [Link] |
77 |
Tang, D. H., Hu, S., Dai, F., Yi, R., Gordin, M. L., Chen, S. R., Song, J. X., Wang, D. H. Self-Templated Synthesis of Mesoporous Carbon from Carbon Tetrachloride Precursor for Supercapacitor Electrodes. ACS Applied Materials & Interface, 2016, 8, 6779. [Link] |
76 |
Chen, S. R., Dai, F., Gordin, M. L., Yu, Z. X., Gao, Y., Song, J. X., Wang, D. H. Functional Organosulfide Electrolyte Promotes an Alternate Reaction Pathway to Achieve High Performance in Lithium–Sulfur Batteries. Angewandte Chemie International Edition, 2016, 55, 4231. [Link] |
75 |
Ai, G., Wang, Z. H., Zhao, H., Mao, W. F., Fu, Y. B., Yi, R., Gao, Y., Battaglia, V., Wang, D. H., Lopatin, S., Liu, G. Scalable process for application of stabilized lithium metal powder in Li-ion batteries. Journal of Power Sources, 2016, 309, 33. [Link] |
74 |
Sohn, H., Gordin, M. L., Regula, M., Kim, D. H., Jung, Y. S., Song, J. X., Wang, D. H. Porous Spherical Polyacrylonitrile-Carbon Nanocomposite with High Loading of Sulfur for Lithium-Sulfur Batteries. Journal of Power Sources, 2016, 302, 70. [Link] |
73 | Song, J. X., Yu, Z. X., Gordin, M. L., Wang, D. H. Advanced Sulfur Cathode Enabled by Highly Crumpled Nitrogen-doped Graphene Sheets for High-Energy-Density Lithium-Sulfur Batteries. Nano Letters, 2016, 16, 864. [Link] |
72 | Yi, R., Gordin, M. L., Wang, D. H. Integrating Si nanoscale building blocks into micro-sized materials to enable practical application in lithium-ion batteries. Nanoscale, 2016, 8, 1834. [Link] |
2015 | |
71 | Song, J. X., Yu, Z. X., Gordin, M. L., Li, X. L., Peng, H. S., Wang, D. H. Advanced Sodium Ion Battery Anode Constructed via Chemical Bonding between Phosphorus, Carbon Nanotube, and Cross-Linked Polymer Binder. ACS Nano, 2015, 9, 11933. [Link] |
70 |
Song, Z. P., Qian, Y. M., Gordin, M. L., Tang, D. H., Xu, T., Otani, M., Zhan, H., Zhou, H. S., Wang, D. H. Polyanthraquinone as a Reliable Organic Electrode for Stable and Fast Lithium Storage. Angewandte Chemie International Edition 2015, 54, 13947. [Link] |
69 |
Yu, Z. X., Shang, S. L., Gordin, M. L., Mousharraf, A., Liu, Z. K., Wang, D. H. Ti-substituted Li[Li0.26Mn0.6-xTixNi0.07Co0.07]O2 layered cathode material with improved structural stability and suppressed voltage fading. Journal of Materials Chemistry A 2015, 3, 17376. [Link] |
68 |
Azimi, N., Xue, Z., Bloom, I., Gordin, M. L., Wang, D. H., Daniel T., Takoudis, C., Zhang, Z. Z. Understanding the Effect of a Fluorinated Ether on the Performance of Lithium-Sulfur Batteries. ACS Applied Materials & Interface 2015, 7, 9169. [Link] |
67 |
Zhong, H., Yang, Y. B., Ding, F., Wang, D. H., Zhou, Y. H., Zhan, H. A Si–MnOOH composite with superior lithium storage properties. Chemical Communications, 2015, 51, 6164. [Link] |
66 |
Yu, Z. X., Song, J. X., Gordin, M. L., Yi, R., Tang, D. H., Wang, D. H. Phosphorus-Graphene Nanosheet Hybrids as Lithium-ion Anodes with Exceptional High-Temperature Cycling Stability. Advanced Science 2015, 2, 1400020. [Link] |
65 |
Song, J. X., Gordin, M. L., Xu, T., Chen, S. R., Yu, Z. X., Sohn, H.S., Lu, J., Ren, Y., Duan, Y. H., Wang, D. H. Strong Lithium Polysulfide Chemisorption on Electroactive Sites of Nitrogen-Doped Carbon Enables High-Performance Lithium-Sulfur Battery Cathodes. Angewandte Chemie International Edition 2015, 54, 4325. [Link] |
64 |
Azimi, N., Xue, Z., Rago, N. D., Takoudis, C., Gordin, M. L., Song, J. X., Zhang, Z. Z., Wang, D. H. Fluorinated Electrolytes for Li-S Battery: Suppressing the Self-Discharge with an Electrolyte Containing Fluoroether Solvent. Journal of Electrochemical Society 2015, 162, A64. [Link] |
63 | Song, J. X., Yu, Z. X., Gordin, M. L., Hu, S., Yi, R., Tang, D. H., Walter, T., Regula, M., Choi, D., Li, X., Manivannan, A., Wang, D. H. Chemically Bonded Phosphorus/Graphene Hybrid as a High Performance Anode for Sodium-Ion Batteries. Nano Letters 2014, 14, 6329. [Link] |
62 | Yi, R., Chen, S. R., Song, J. X., Gordin, M. L., Manivannan, A., Wang, D. H. High-Performance Hybrid Supercapacitor Enabled by a High-Rate Si-Based Anode. Advanced Functional Materials 2014, 24, 7433. [Link] |
61 | Lv, D. P., Tang, D. H., Duan, Y. H., Gordin, M. L., Dai, F., Zhu, P. Y., Song, J. X., Manivannan, A., Wang, D. H. Study of Fluorine Substituted Phenyl Based Complex as 3V-electrolyte for Mg Batteries. Journal of Material Chemistry A 2014, 2, 15488. [Link] |
60 | Song, J. X., Zhou, M. J., Yi, R., Xu, T., Gordin, M. L., Tang, D. H., Yu, Z. X., Regula, M., Wang, D. H. Interpenetrated Gel Polymer Binder for High Performance Silicon Anode in Lithium-ion Battery. Advanced Functional Materials 2014, 24, 5904. [Link] |
59 | Tang, D. H., Yi, R., Gordin, M. L., Melnyk, M., Dai, F., Chen, S. R., Song, J. X., Wang, D. H. Titanium nitride coating to enhance the performance of silicon nanoparticles as a lithium-ion battery anode. Journal of Material Chemistry A 2014, 2, 10375. [Link] |
58 | Gordin, M. L., Dai, F., Chen, S. R., Xu, T., Song, J. X., Tang, D. H., Azimi, N., Zhang, Z. C., Wang, D. H. Bis(2,2,2-trifluoroethyl) Ether As an Electrolyte Co-solvent for Mitigating Self-Discharge in Lithium–Sulfur Batteries. ACS Applied Materials & Interface 2014, 6, 8006. [Link] |
57 | Sohn, H. S., Gordin, M. L., Xu, T., Chen, S. R., Lv, D. P., Song, J. X., Manivannan, A., Wang, D. H. Porous spherical carbon/sulfur nanocomposites by aerosol-assisted synthesis: the effect of pore structure and morphology on their electrochemical performance as lithium-sulfur battery cathodes. ACS Applied Materials & Interface 2014, 6, 7596. [Link] |
56 | Yi, R., Zai, J. T., Dai, F., Gordin, M. L., Wang, D. H. Dual Conductive Network-Enabled Graphene/Si-C Composite Anode with High Areal Capacity for Lithium-ion Batteries. Nano Energy 2014, 6, 211. [Link] |
55 | Song, J. X., Yu, Z. X., Xu, T., Chen, S. R., Sohn, H. S., Regula, M., Wang, D. H. Flexible Freestanding Sandwich-structured Sulfur Cathodes with Superior Performance for Lithium-sulfur Batteries. Journal of Material Chemistry A 2014, 2, 8623.. [Link] |
54 | Dai, F., Zai, J. T., Yi, R., Gordin, M. L., Sohn, H. S., Chen, S. R., Wang, D. H. Bottom-up Synthesis of High Surface Area Mesoporous Crystalline Silicon and Evaluation of Its Hydrogen Evolution Performance. Nature Communications 2014, 5, 3605. [Link] |
53 | Zhu, P. Y., Song, J. X., Lv, D. P., Wang, D. H., Jaye, C., Fischer, D. A., Wu, T. P., Chen, Y. S. Mechanism of Enhanced Carbon Cathode Performance by Nitrogen Doping in Lithium–Sulfur Battery: An X-ray Absorption Spectroscopic Study. Journal of Physical Chemistry C 2014, 118, 7765. [Link] |
52 | Chen, D., Yi, R., Chen, S. R., Xu, T., Gordin, M. L., Lv, D. P., Wang, D. H. Solvothermal synthesis of V2O5/graphene nanocomposites for high performance lithium ion batteries. Materials Science and Engineering: B 2014, 185, 7. [Link] |
51 | Chen, D., Yi, R., Chen, S. R., Xu, T., Gordin, M. L., Wang, D. H. Facile Synthesis of Graphene-silicon Nanocomposites with an Advanced Binder for High-performance Lithium-ion Battery Anodes, Solid State Ionics 2014, 254, 65. [Link] |
50 | Song, J. X., Chen S. R., Zhou, M. J., Xu, T., Gordin, M. L., Lv, D. P., Long T. J., Melnyk M., Wang, D. H. Micro-sized silicon-carbon composite composed of carbon-coated sub-10 nm Si primary particles as high-performance anode materials for lithium-ion batteries, Journal of Material Chemistry A 2014, 2, 1257. [Link] |
49 | Song, J. X., Xu, T., Gordin, M. L., Zhu, P. Y., Lv, D. P., Jiang, Y-B, Chen, Y. S., Duan Y. H., Wang, D. H. Nitrogen-Doped Mesoporous Carbon Promoted Chemical Adsorption of Sulfur and Fabrication of High-Areal-Capacity Sulfur Cathode with Exceptional Cycling Stability for Lithium-Sulfur Batteries, Advanced Functional Materials 2014, 24, 1243. [Link] |
48 | Lv, D. P., Gordin, M. L., Yi, R., Xu, T., Song, J. X., Jiang Y-B, Choi, D. W., Wang, D. H., GeOx/Reduced Graphene Oxide Composite as an Anode for Li-ion Batteries: Enhanced Capacity via Reversible Utilization of Li2O along with Improved Rate Performance, Advanced Functional Materials 2014, 24, 1059. [Link] |
2013 | |
47 | Xu, T., Song, J. X., Gordin, M. L., Sohn, H. S., Yu, Z. X., Chen, S. R., Wang, D. H. Mesoporous Carbon-Carbon Nanotube-Sulfur Composite Microspheres for High-Areal-Capacity Lithium-Sulfur Battery Cathodes, ACS Applied Materials & Interface 2013, 5, 11355. [Link] |
46 | Yi, R., Zai, J. T., Dai, F., Gordin, M. L., Wang, D. H. Improved rate capability of Si-C composite anodes by boron doping for lithium-ion batteries, Electrochemistry Communications 2013, 36, 29. [Link] |
45 | Yi, R., Dai, F., Gordin, M. L., Sohn, H. S., Wang, D. H. Influence of Silicon Nanoscale Building Blocks Size and Carbon Coating on the Performance of Micro-sized Si-C Composite Li-ion Anodes. Advanced Energy Materials 2013, 3, 1507. [Link] |
44 | Chen, S. R., Dai, F., Gordin, M. L., Wang, D. H. Exceptional electrochemical performance of rechargeable Li-S batteries with polysulfide-containing electrolyte, RSC Advances 2013, 3, 3540. [Link] |
43 | Yi, R., Dai, F., Gordin, M. L., Chen, S. R., Wang, D. H. Micro-sized Si-C Composite with Interconnected Nanoscale Building Blocks as High-Performance Anodes for Practical Application in Lithium-ion Batteries, Advanced Energy Materials 2013, 3, 295. [Link] |
42 | Yi, R., Feng, J. K., Lv, D. P., Gordin, M. L., Chen, S. R., Choi, D. W. Wang, D. H. Amorphous Zn2GeO4 Nanoparticles as Anodes with High Reversible Capacity and Long Cycling Life for Li-ion Batteries, Nano Energy 2013, 2, 498. [Link] |
41 | Zhou, M. J., Gordin, M. L., Chen, S. R., Xu, T., Song, J. X., Lv. D. P., Wang, D. H. Enhanced Performance of SiO/Fe2O3 Composite as an Anode for Rechargeable Li-ion Batteries, Electrochemistry Communications 2013, 28, 79. [Link] |
40 | Lv, D. P., Xu, T., Saha P., Datta, M. K. Gordin, M. L., Ayyakkannu Manivannan, A., Kumta, P. N., and Wang, D. H. A Scientific Study of Current Collectors for Mg Batteries in Mg(AlCl2EtBu)2/THF Electrolyte, Journal of the Electrochemical Society 2013, 160, A351. [Link] |
2012 - 2003 | |
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3 | Wang, D. H.; Ji, X. L.; Pang, J. B.; Hu, Q. Y.; Xu, H. F.; Lu, Y. F. Electric Field-Induced Mesostructure Transformation of Self-Assembled Silica/Copolymer Nanocomposite Thin Films. Physical Chemistry Chemical Physics 2003, 5, 4070. [Link] |
2 | McCaughey, B.; Costello, C.; Wang, D. H.; Hampsey, J. E.; Yang, Z. Z.; Li, C. J.; Brinker, C. J.; Lu, Y. F. Self-Assembly of Mesostructured Conjugated Poly(2,5-Thienylene Ethynylene)/Silica Nanocomposites. Advanced Materials 2003, 15, 1266. [Link] |
1 | Lu, Y. F.; McCaughey, B. F.; Wang, D. H.; Hampsey, J. E.; Doke, N.; Yang, Z. Z.; Brinker, C. J. Aerosol-Assisted Formation of Mesostructured Thin Films. Advanced Materials 2003, 15, 1733. [Link] |