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近海化学活性铁的检测研究进展
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作者 潘大为 王晨晨 +2 位作者 魏红 孟翔鹏 盖国卫 《海洋环境科学》 CAS CSCD 北大核心 2024年第5期817-824,共8页
铁是海洋浮游动、植物生长所必需的营养金属元素,对海洋初级生产力有着重要的影响。活性铁是溶解态铁的重要组成部分,最容易被浮游植物吸收利用。尽管海水中铁的检测方法已经取得了很大进展,但铁形态分析方法的建立仍有较大的发展空间... 铁是海洋浮游动、植物生长所必需的营养金属元素,对海洋初级生产力有着重要的影响。活性铁是溶解态铁的重要组成部分,最容易被浮游植物吸收利用。尽管海水中铁的检测方法已经取得了很大进展,但铁形态分析方法的建立仍有较大的发展空间。本文系统总结了海水中铁的形态分析方法,尤其是化学活性铁的电化学检测研究进展,并对电化学方法在海水活性铁现场、快速分析方面的发展及应用进行了展望,以期为海水中铁的存在形态、分布规律和转化机制等方面的深入研究提供技术参考,提高人们对铁的生物地球化学循环和近海环境生态效应的认识。 展开更多
关键词 化学活性铁 海水 形态分析 化学方法
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Ambient synthesis, characterization, and electrochemical activity of LiFePO4 nanomaterials derived from iron phosphate intermediates
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作者 Jonathan M. Patete Megan E. Scofield +11 位作者 Vyacheslav Volkov Christopher Koenigsmann Yiman Zhang Amy C. Marschilok Xiaoya Wang Jianming Bai Jinkyu Han Lei Wang Feng Wang Yimei Zhu Jason A. Graetz Stanislaus S. Wong 《Nano Research》 SCIE EI CAS CSCD 2015年第8期2573-2594,共22页
LiFePO4 materials have become increasingly popular as a cathode material due to the many benefits they possess including thermal stability, durability, low cost, and long life span. Nevertheless, to broaden the genera... LiFePO4 materials have become increasingly popular as a cathode material due to the many benefits they possess including thermal stability, durability, low cost, and long life span. Nevertheless, to broaden the general appeal of this material for practical electrochemical applications, it would be useful to develop a relatively mild, reasonably simple synthesis method of this cathode material. Herein, we describe a generalizable, 2-step methodology of sustainably synthesizing LiFePO4 by incorporating a template-based, ambient, surfactantless, seedless, U-tube protocol in order to generate size and morphologically tailored, crystalline, phase-pure nanowires. The purity, composition, crystallinity, and intrinsic quality of these wires were systematically assessed using transmission electron microscopy (TEM), high-resolution TEM (HRTEM), scanning electron microscopy (SEM), X-ray diffraction (XRD), selected area electron diffraction (SAED), energy dispersive analysis of X-rays (EDAX), and high-resolution synchrotron XRD. From these techniques, we were able to determine that there is an absence of any obvious defects present in our wires, supporting the viability of our synthetic approach. Electrochemical analysis was also employed to assess their electrochemical activity. Although our nanowires do not contain any noticeable impurities, we attribute their less than optimal electrochemical rigor to differences in the chemical bonding between our LiFePO4 nanowires and their bulk-like counterparts. Specifically, we demonstrate for the first time experimentally that the Fe-O3 chemical bond plays an important role in determining the overall conductivity of the material, an assertion which is further supported by recent "first-principles" calculations. Nonetheless, our ambient, solution-based synthesis technique is capable of generating highly crystalline and phase-pure energy-storage-relevant nanowires that can be tailored so as to fabricate different sized materials of reproducible, reliable morphology. 展开更多
关键词 ambient synthesis template synthesis cathode material lithium iron phosphate nanostructures
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