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SusChem: Manganese oxide supercapacitor charging/discharging mechanisms to capture energy using capacitive mixing (CapMix)

SusChem: Manganese oxide supercapacitor charging/discharging mechanisms to capture energy using capacitive mixing (CapMix)
SusChem:氧化锰超级电容器充电/放电机制,利用电容混合捕获能量 (CapMix)
批准号:
1603635
负责人:
Christopher Gorski
金额:
$33.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-01 至 2020-08-31

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中文摘要
翻译
1603635戈尔斯基,Christopher A.处理废水目前消耗了全国总能源需求的2-5%,从废水处理厂和工业场所的可再生现场来源以盐度梯度和废热的形式提供这种能源的机会巨大。拟议工作的目标是探索一种新的概念,在废水处理厂使用锰氧化物的充放电在现场发电。这种方法使用低成本和无毒的材料,能够以浓缩盐溶液的形式储存能量,当有能源需求时可以使用。由于低盐度废水与高盐度海水混合释放的熵能量,排放到海水中的处理废水在全球范围内释放出高达19千兆瓦的能量。美国工业场所和发电厂有超过1000千兆瓦的废热可用,这些废热可以通过蒸发或蒸馏过程产生热产生的盐度梯度。一种从这两种来源产生电能的新方法是使用电极,当暴露在不同盐度的溶液中时,电极经历电容和/或伪电容氧化还原反应。这种方法被称为电容式混合或CapMix,可以使用低成本和无毒的材料。当CapMix与废热源结合使用时,它可以以浓缩溶液的形式存储能量,以便在有能源需求时使用。CapMix工艺比以前探索的捕获盐度梯度能量的方法(如压力延迟渗透和反向电渗析)更具优势,因为它们不需要通常昂贵得令人望而却步的膜。CapMix工艺直到最近才被发明和研究,因此发生的相关反应仍然没有得到很好的表征,也没有针对能源生产进行优化。这项工作的目的是确定作为水溶液条件以及氧化锰结构和颗粒大小的函数的锰氧化物充放电机制,并利用这些信息来优化CapMix电池中氧化锰电极的功率密度。为了实现这一目标,PI将进行三个基础研究问题:1)氯化钠溶液中氧化锰的充电机制是什么,以及它如何随着氧化锰的结构和颗粒大小的变化而变化?2)将盐从氯化钠改变为与热生成的盐度梯度相关的盐是否会改变氧化锰的充放电机制?如果是这样,如何实现?3)当锰氧化物和电池设计优化时,自然和热产生的盐度梯度的最大可实现功率密度是多少?为了宣传这项研究并帮助教育年轻科学家,研究人员将通过宾夕法尼亚州立大学外联和科学参与办公室,每年为大约100名年轻女性开发和举办为期1天的研讨会。这些努力和其他努力将通过研究和推广活动满足国家从可再生、碳中性来源获取能源的需求,从而使社会受益。
英文摘要
1603635Gorski, Christopher A.Treating wastewater currently consumes 2-5% of the total national energy demand and there are tremendous opportunities for providing this energy from renewable on-site sources at wastewater treatment plants and industrial sites in the form of salinity gradients and waste heat. The goal of the proposed work is to explore a new concept using charging and discharging of manganese oxide to generate electricity, on site, at wastewater treatment plants. This approach uses low-cost and non-toxic materials and will be able to store energy in the form of a concentrated salt solution which can be used when there is an energy demand.Treated wastewater discharged into seawater releases as much as 19 gigawatts globally due to entropic energy released through mixing of the low-salinity wastewater with high-salinity seawater. Over 1000 gigawatts GW of waste heat is available in the U.S. at industrial sites and power plants, which can be used to produce heat-generated salinity gradients through evaporative or distillation processes. A new approach for generating electrical energy from both these sources is using electrodes that undergo capacitive and/or pseudo-capacitive redox reactions when exposed to solutions with different salinities. This approach, referred to as Capacitive Mixing or CapMix, can use low-cost and non-toxic materials. When CapMix is used in conjunction with waste heat sources, it can store energy in the form of a concentrated solution that can be used when there is an energy demand. CapMix processes are advantageous over previously explored methods to capture salinity gradient energy, such as pressure retarded osmosis and reverse electrodialysis, because they do not require membranes that are often prohibitively expensive. CapMix processes have only recently been invented and investigated, and consequently the relevant reactions that occur remain poorly characterized and have not been optimized for energy production. The goal of the proposed work is to determine Manganese (Mn) oxide charging and discharging mechanisms as a function of aqueous solution conditions and Mn oxide structure and particle size, and to use this information to optimize the power densities of Mn oxide electrodes in CapMix cells. To reach this goal, the PIs will pursue three fundamental research questions: 1) What is the mechanism of Mn oxide charging in sodium chloride solutions, and how does it change as a function of Mn oxide structure and particle size? 2) Does changing the salt from sodium chloride to those relevant to heat-generated salinity gradients alter the Mn oxide charging and discharging mechanisms? If so, how? 3) What are the maximum achievable power densities for natural and heat-generated salinity gradients when the Mn oxide and cell deign are optimized? To communicate this research and help to educate young scientists, the researchers will develop and conduct a 1-day workshop for approximately 100 young women each year through the Penn State Outreach and Scientific Engagement Office. These efforts, and others, will benefit society by addressing the national need to capture energy from renewable, carbon-neutral sources through research and outreach activities.
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会议论文
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