2024 | 2023 | 2022 | 2021202020192018 | 2017 | 2016 | 2015 | 2014 | 2013 | 2012-2003

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]

2014

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
39 Li, J., Zhu, K., Shang, J., Wang, D., Nie, Z., Guo, R., Liu, C., Wang, Z., Li, X., Liu, J. Fluorescent Functionalized Mesoporous Silica for Radioactive Material Extraction, Separation Science and Technology 2012, 47, 1507. [Link]
38 Dai, F., Yi, R., Gordin, M. L., Chen, S. R., Wang, D. H. Amorphous Si/SiOx/SiO2 Nanocomposites via a Facile and Scalable Synthesis as Anodes for Li-ion Batteries with Long Cycling Life, RSC Advances 2012, 2, 12710. [Link]
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