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    The Energy Storage and Distributed Resources Division (ESDR) works on developing advanced batteries and fuel cells for transportation and stationary energy storage, grid-connected technologies for a cleaner, more reliable, resilient, and cost-effective future, and demand responsive and distributed energy technologies for a dynamic electric grid.

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    We work closely with academic, government and industry partners to conduct foundational and applied research that provides the groundwork for the development of transformative new energy technologies in the areas of energy storage and conversion, electrical grid, advanced materials for the energy infrastructure, science of manufacturing and water-energy nexus.

    Visit our focus areas and research groups at the right to find out more.

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    • Transportation
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    • Grid Integration
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      • The John S. Newman Early Career Scientist
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Publications

Publications by Category

  • Applied Energy Materials
  • Energy Conversion
  • Energy Storage
  • Grid Integration
  • Laser Technologies
  • Thermal Energy
X Author: Jun Huang

2018

Zhang, Guangzhao, Yu Yang, Yunhua Chen, Jun Huang, Tian Zhang, Hongbo Zeng, Chaoyang Wang, Gao Liu, and Yonghong Deng."A Quadruple-Hydrogen-Bonded Supramolecular Binder for High-Performance Silicon Anodes in Lithium-Ion Batteries."Small 14.29 (2018) 1801189. DOI

2013

Huang, Jijun, Elena Ten, Gao Liu, Matthew Finzen, Wenli Yu, Janice S Lee, Eduardo Saiz, and Antoni P Tomsia."Biocomposites of pHEMA with HA/β-TCP (60/40) for bone tissue engineering: Swelling, hydrolytic degradation, and in vitro behavior."Polymer 54.3 (2013) 1197-1207. DOI
Huang, Jijun, Dacheng Zhao, Smit J Dangaria, Xianghong Luan, Thomas G.H Diekwisch, Guoqing Jiang, Eduardo Saiz, Gao Liu, and Antoni P Tomsia."Combinatorial design of hydrolytically degradable, bone-like biocomposites based on PHEMA and hydroxyapatite."Polymer 54.2 (2013) 909-919. DOI

2012

Huang, Jijun, Gao Liu, Chengyu Song, Eduardo Saiz, and Antoni P Tomsia."Role of Molecular Chemistry of Degradable pHEMA Hydrogels in Three-Dimensional Biomimetic Mineralization."Chemistry of Materials 24.7 (2012) 1331-1337. DOI

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