4.6 Article

Freestanding silicon microparticle and self-healing polymer composite design for effective lithiation stress relaxation

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 6, 期 24, 页码 11353-11361

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7ta11269f

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资金

  1. National Research Foundation of Korea (NRF)
  2. Korea government (MSIP) [NRF-2016R1A2B3011473, NRF-2014R1A4A1003712]
  3. National Research Council of Science & Technology (NST) - Korea government (MSIP) [CAP-15-04-KITECH]
  4. National Research Foundation of Korea [2014R1A4A1003712, 2016R1A2B3011473, 10Z20130011056] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Self-healing features that mimic the biological mechanisms for self-repair have recently been applied to high-capacity but extreme volume expansion electrode materials such as silicon anodes to overcome the short cycle-life caused by electrical contact loss and active material pulverization. In this study, we adopt a freestanding composite design for effective relaxation of lithiation induced stresses and enhancement of electrochemical reliability. Silicon microparticles are homogenously dispersed and embedded within a self-healing polymer matrix that enables free volume expansion and contraction during lithiation and delithiation. The freestanding electrode, which does not require a separate current collector, demonstrated 91.8% capacity retention after 100 cycles at C/10 rate with an average specific capacity and gravimetric capacity, including current collector mass, of approximate to 2100 mA h g(-1) and approximate to 1050 mA h g(-1) respectively, which is a significant improvement compared to the conventional design of simple self-healing polymer coatings on silicon particle embedded current collectors. The fabricated freestanding silicon microparticle and self-healing polymer composite electrode demonstrated stable electrochemical performance after being completely cut, reattached, and cycled and retained at most 95% of its initial capacity. Overall, the proposed freestanding silicon microparticle and self-healing polymer composite design demonstrated excellent gravimetric capacity, cycle life, and self-healing capability without employing expensive and complex nanostructures.

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