Mechanically Robust and Chemically Stable Separator Membrane Constituted of Electrospun Halloysite-Integrated Core–Shell Nanofibers for Sodium-Ion Batteries

IF 5.5 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Akash Kankane, , , Dhirendra Kumar Rai, , and , S. Janakiraman*, 
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Abstract

The emerging demand for efficient and sustainable energy storage systems has driven significant interest in sodium-ion batteries (SIBs) as an economic substitute for lithium-ion batteries (LIBs). Among the key components of SIBs, the separator serves a crucial role in governing electrochemical performance and ensuring operational safety under various working conditions. This study explores the fabrication of advanced nanofiber separators using coaxial electrospinning, focusing on a core–shell composite structure composed of polyacrylonitrile (PAN) as the core of the nanofibers and halloysite nanotubes (HNTs) integrated polyvinylidene fluoride-co-hexafluoropropylene (PVDF-HFP) as the shell of the nanofibers. The effect of this architecture on the structural integrity and electrochemical performance is systematically investigated. Field emission scanning electron microscopy (FESEM), X-ray diffraction (XRD), and Fourier-transform infrared spectroscopy (FTIR) confirm the optimized morphology, phase, and chemical bonding in the fabricated composite nanofiber separator. Outcomes show that the morphology of the HNT integrated PVDF-HFP/PAN coaxial composite separator (CCS) is uniform, and most of the fibers have a diameter range of 200–400 nm. These nanoscale features of CCS contribute a commendable set of properties, including high mechanical strength (24 MPa), high thermal stability (170 °C), high porosity (74%), and electrolyte uptake (325%). Electrochemical evaluations reveal superior ionic conductivity (1.86 mS cm–1), transference number (0.63), and a broad electrochemical stability window (5 V). The battery cell assembled with a CCS showed excellent performance, delivering the maximum discharge capacity of 159.58 mA h g–1 at 0.1 C rate and retaining 87.32% after 100 charge–discharge cycles at 0.5 C rate. This research demonstrates the potential of a unique core–shell nanofibrous structure to deliver outstanding electrochemical performance, paving the way for its application in next-generation SIBs.

Abstract Image

静电纺埃洛石集成核壳纳米纤维制备的钠离子电池分离膜的力学稳定性和化学稳定性
对高效和可持续能源存储系统的新需求推动了人们对钠离子电池(SIBs)作为锂离子电池(lib)的经济替代品的极大兴趣。在sib的关键部件中,分离器在控制电化学性能和确保各种工况下的运行安全方面起着至关重要的作用。本研究以聚丙烯腈(PAN)为核心,高岭土纳米管(HNTs)为核心,聚偏氟乙烯-共六氟丙烯(PVDF-HFP)为纳米纤维的壳-核复合结构为核心,探讨了同轴静电纺丝法制备先进的纳米纤维分离器。系统地研究了这种结构对结构完整性和电化学性能的影响。场发射扫描电镜(FESEM)、x射线衍射(XRD)和傅里叶变换红外光谱(FTIR)证实了复合纳米纤维分离器中优化的形貌、物相和化学键。结果表明:HNT集成PVDF-HFP/PAN共轴复合分离器(CCS)形貌均匀,大部分纤维直径范围在200 ~ 400 nm;CCS的这些纳米级特性带来了一系列值得称赞的性能,包括高机械强度(24 MPa)、高热稳定性(170°C)、高孔隙率(74%)和电解质吸收率(325%)。电化学评价表明,其离子电导率(1.86 mS cm-1)、转移数(0.63)、电化学稳定窗口(5 V)较宽。用CCS组装的电池表现出优异的性能,在0.1 C倍率下的最大放电容量为159.58 mA h g-1,在0.5 C倍率下充放电循环100次后的放电容量保持在87.32%。这项研究展示了一种独特的核壳纳米纤维结构的潜力,可以提供出色的电化学性能,为其在下一代sib中的应用铺平了道路。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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