CAREER: Decoupling electrodeposition from corrosion for precise tuning of metal deposits in high energy batteries
CAREER: Decoupling electrodeposition from corrosion for precise tuning of metal deposits in high energy batteries
批准号:
2143677
负责人:
Yuzhang Li
金额:
$56.25万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-07-01 至 2027-12-31
中文摘要
活性金属的电化学沉积是几种重要清洁能源技术的核心工艺,包括使用金属阳极的高能电池。理解和设计这些电化学系统对于实现国家零碳排放未来的目标至关重要,其中电网规模的能量存储可以促进可再生但间歇性的绿色能源(例如,太阳能、风能)和交通运输部门越来越电气化。该项目的目标是了解和设计用于储能的金属电沉积,这将对造福社会的未来技术产生广泛影响,包括电动汽车、电动飞行和电网规模储能。该项目的教育和外联活动将通过利用非正式环境向更广泛的社区推广科学发现。这种非正式环境已被证明是STEM中代表性不足的学生特别有效的学习环境,将通过项目活动为他们提供公平的教育机会。例如,研究人员的YouTube频道将以吸引人的方式向公众传播该项目的结果,提高对能源研究重要性的认识,并激励未来一代的年轻科学家和工程师。该项目的综合研究和教育计划将导致能量密集的锂金属电池,使美国更接近实现脱碳目标,扩大追求STEM的代表性不足的学生人数,并使美国劳动力多样化和具有全球竞争力。这个基础研究项目将调查锂金属电沉积的纳米机制;目前对其的理解由于表面腐蚀膜即固体电解质界面(SEI)的同时形成而变得复杂。对这些过程的深入了解将使高能电池能够实现极快速充电。我们的目标是通过将金属电沉积与SEI膜形成分离来弥合这一理解上的差距,以独立地研究每个过程。该项目的方法将使用超微电极的几何形状,使超快电沉积电流密度,可以超过电解质分解速率。最先进的低温电子显微镜技术将保存和成像的纳米界面形成。该项目的目标是(1)理解和调整与表面腐蚀/SEI形成脱钩的电沉积形态,(2)揭示SEI膜的反应动力学,以及(3)利用这些见解设计能够快速充电的高效高能电池。这种方法与过去的工作不同,过去的工作不能将这两个过程分开,并将它们分开研究。通过提供第一张没有腐蚀膜影响的锂生长的图像,并量化膜的反应动力学,该项目的结果将为精确调整锂沉积形态提供重要的见解。该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Electrochemical deposition of reactive metals is the central process in several important clean energy technologies, including high-energy batteries using metallic anodes. Understanding and engineering these electrochemical systems are critical to achieving the Nation’s goal of a zero-carbon emissions future, where grid-scale energy storage can facilitate renewable yet intermittent sources of green energy (e.g., solar, wind) and the transportation sector is increasingly electrified. The project’s objectives to understand and engineer metal electrodeposition for energy storage will generate broad impact for future technologies that benefit society, including electric vehicles, electric-powered flight, and grid-scale energy storage. The project’s education and outreach activities will promote scientific discoveries to the broader community by leveraging informal settings. Such informal settings have been shown to be particularly effective learning environments for underrepresented students in STEM, for whom equitable access to educational opportunities will be provided through the project’s activities. For example, the researcher's YouTube channel will disseminate the project’s results to the general public in an engaging way, raising awareness for the importance of energy research and exciting the future generation of young scientists and engineers. The project’s integrated research and educational plan will lead to energy-dense lithium metal batteries that bring the US closer to achieving decarbonization goals, expand the number of underrepresented students pursuing STEM, and enable a diverse and globally competitive US workforce.This fundamental research project will investigate the nanoscale mechanism of Li metal electrodeposition; the current understanding of which is complicated by the simultaneous formation of a surface corrosion film, the solid electrolyte interphase (SEI). A deeper understanding of these processes will enable high-energy batteries capable of extreme fast charging. The objective is to bridge this gap in understanding by decoupling metal electrodeposition from SEI film formation to study each process independently. The project’s approach will use ultramicroelectrode geometries to enable ultrafast electrodeposition current densities that can outpace electrolyte decomposition rates. State-of-the-art cryogenic electron microscopy techniques will preserve and image the nanoscale interfaces that form. The project’s objectives are to (1) understand and tune electrodeposition morphologies decoupled from surface corrosion/SEI formation, (2) reveal the reaction kinetics of the SEI film, and (3) use these insights to engineer efficient high-energy batteries capable of fast charging. This approach is distinct from past work, which could not decouple these two processes and study them separately from each other. By providing the first images of how Li grows intrinsically without the influence of a corrosion film and quantifying the film’s reaction kinetics, the project’s results will provide significant insights into precisely tuning Li deposition morphology.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1038/s41586-023-06235-w
发表时间:
2023-08
期刊:
Nature
影响因子:
64.8
作者:
[Xintong Yuan;Bo Liu;M. Mecklenburg;Yuzhang Li]
通讯作者:
Xintong Yuan;Bo Liu;M. Mecklenburg;Yuzhang Li
Imaging of nitrogen fixation at lithium solid electrolyte interphases via cryo-electron microscopy
通过冷冻电子显微镜对锂固体电解质界面的固氮成像
DOI:
10.1038/s41560-022-01177-5
发表时间:
2023
期刊:
Nature Energy
影响因子:
56.7
作者:
[Steinberg, Katherine, Yuan, Xintong, Klein, Channing K., Lazouski, Nikifar, Mecklenburg, Matthew, Manthiram, Karthish, Li, Yuzhang]
通讯作者:
Li, Yuzhang
国内基金
海外基金
登录
查看更多内容
greenwashing behavior in China:Basedon an integrated view of reconfiguration of environmental authority and decoupling logic
-
批准号:--
-
项目类别:外国学者研究基金项目
-
资助金额:--
-
批准年份:2024
-
负责人:YU BYUNGJUN
-
依托单位:
Incentive and governance schenism study of corporate green washing behavior in China: Based on an integiated view of econfiguration of environmental authority and decoupling logic
-
批准号:--
-
项目类别:外国学者研究基金项目
-
资助金额:--
-
批准年份:2024
-
负责人:YU BYUNGJUN
-
依托单位:
偏微分方程与数论中的decoupling定理
-
批准号:11926303
-
项目类别:数学天元基金项目
-
资助金额:20.0万元
-
批准年份:2019
-
负责人:苗长兴
-
依托单位:
耕地占用与GDP增长的Decoupling分析
-
批准号:70673097
-
项目类别:面上项目
-
资助金额:20.0万元
-
批准年份:2006
-
负责人:陈百明
-
依托单位: