Thermoelectric metal nanostructures: Disorder, plasmons, and photodetection
Thermoelectric metal nanostructures: Disorder, plasmons, and photodetection
批准号:
1704625
负责人:
Douglas Natelson
金额:
$36.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-08-01 至 2021-07-31
中文摘要
翻译后摘要:非技术性的:流动的热量和电荷耦合在一起,这些热电效应的基础上不同的关键技术,包括恒温器,电驱动的冰箱,和光电探测器。 热电性能可以通过在纳米尺度上构造材料来设计。 使用扫描激光作为可移动的热源,PI的小组已经发现了意想不到的热电效应,即使在名义上简单的金属结构。 具体而言,晶界和表面化学可以改变热电响应,并且在电子必须“隧穿”穿过金属电极之间的纳米级间隙的结构中,可以大大增强光电压。该项目将确认这些令人惊讶的特征背后的机制,并在此基础上创建和表征基于金属光学天线的新型光电探测器原型。 虽然不如基于光电探测器的光电探测器灵敏,但金属光学天线系统是几何可调的,具有不同的噪声过程,并且可以更简单地制造。 研究结果将通过出版物、会议上的演讲以及PI在其博客上的通俗文章进行传播。 该项目将为研究生和本科生研究人员提供培训和专业发展,帮助创造下一代技术熟练和创新的劳动力。 PI还将通过正在进行的水稻计划与K12教师和其他机构的本科生合作。 通过他的博客和与《休斯顿纪事报》合作的文章,PI将继续普及纳米科学和工程,特别是该项目的研究成果。技术:纳米结构热电器件作为技术和工具,具有巨大的潜力,可以获得控制和优化纳米级能量流动所需的基本科学和工程知识。 通过扫描激光显微镜耦合电子输运测量和照明,PI的团队在名义上简单的金属纳米结构中发现了意想不到的光电效应。 金属纳米线在Seebeck响应中表现出以前未报道的不均匀性,表明晶界和表面化学可以成为工程热电响应的工具。 金属电极之间的纳米尺度隧穿间隙显示出比非隧穿结构大大增强的光电压,与等离子体增强的热电子隧穿机制一致的材料和极化依赖性。 该项目的智力价值在于其三个具体的研究目标:通过控制表面条件(通过自组装单层)和晶粒结构来量化和工程化金属纳米结构中的光电效应;理解和优化纳米间隙中大大增强的热电效应;并展示基于这些增强的光电效应的光电探测器,查看灵敏度和噪声特性。 PI的研究生和本科生团队将与理论家合作,对这些结构中的光电和热传输过程进行建模,为响应优化提供关键反馈。 研究结果将通过出版物、会议上的演讲以及PI博客(适当时)广泛传播。 该项目将为研究生和本科生研究人员提供培训和专业发展,帮助创造下一代技术熟练和创新的劳动力。 PI还将通过正在进行的水稻计划与K12教师和其他机构的本科生合作。 通过他的博客和与休斯顿纪事报合作的文章,PI将继续普及纳米科学和工程,特别是该项目的研究成果。
英文摘要
Abstract:Nontechnical:The flow of heat and electric charge are coupled together, and these thermoelectric effects underpin diverse critical technologies, including thermostats, electrically driven refrigerators, and photodetectors. Thermoelectric properties can be engineered by structuring materials on the nanoscale. Using a scanning laser as a moveable heat source, the PI's group has revealed unexpected thermoelectric effects even in nominally simple metal structures. Specifically, grain boundaries and surface chemistry can modify thermoelectric response, and greatly enhanced photo-voltages are possible in structures where electrons have to "tunnel" across a nanoscale gap between metal electrodes. This project will confirm the mechanisms behind these surprising features, and build upon this knowledge to create and characterize prototypes of new photodetectors based on metal optical antennas. While not as sensitive as semiconductor-based photodetectors, metal optical antenna systems are geometrically tunable, have different noise processes, and can be simpler to fabricate. Results will be disseminated via publications, presentations at conferences, and popular writings by the PI on his blog. This project will provide training and professional development to graduate students and undergraduate researchers, aiding in the creation of the next generation of a technologically skilled and innovative workforce. The PI will also work with K12 teachers and undergraduates from other institutions through ongoing Rice programs. Through his blog and writings in collaboration with the Houston Chronicle, the PI will continue to popularize nanoscale science and engineering in general, and this project's research outcomes in particular.Technical:Nanostructured thermoelectric devices have enormous potential as technologies and as tools to acquire the basic scientific and engineering knowledge necessary to control and optimize the flow of energy at the nanoscale. By coupling electronic transport measurements and illumination via a scanning laser microscope, the PI's group has found unexpected photothermoelectric effects in nominally simple metal nanostructures. Metal nanowires demonstrate previously unreported inhomogeneities in Seebeck response, indicating that grain boundaries and surface chemistry can be tools for engineering thermoelectric response. Nanoscale tunneling gaps between metallic electrodes show greatly enhanced photovoltages compared to nontunneling structures, with material and polarization dependences that are consistent with plasmon-enhanced hot electron tunneling as the mechanism. The intellectual merit of this project lies in its three specific research goals: quantifying and engineering photothermoelectric effects in metal nanostructures through control of surface conditions (via self-assembled monolayers) and grain structure; understanding and optimizing greatly enhanced thermoelectric effects in nanogaps; and demonstrating photodetectors based on these enhanced photothermoelectric effects, looking at sensitivity and noise properties. The PI's team of graduate and undergraduate students will collaborate with theorists in modeling the optoelectronic and thermal transport processes at work in these structures, providing critical feedback for optimization of response. Results will be disseminated broadly through publications, presentations at conferences, and when appropriate the PI's blog. This project will provide training and professional development to graduate students and undergraduate researchers, aiding in the creation of the next generation of a technologically skilled and innovative workforce. The PI will also work with K12 teachers and undergraduates from other institutions through ongoing Rice programs. Through his blog and writings in collaboration with the Houston Chronicle, the PI will continue to popularize nanoscale science and engineering in general, and this project's research outcomes in particular.
期刊论文(6)
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DOI:
10.1073/pnas.2002284117
发表时间:
2020-09
期刊:
Proceedings of the National Academy of Sciences
影响因子:
--
作者:
[Charlotte I. Evans;Rui Yang;Lucia T. Gan;M. Abbasi;Xifan Wang;R. Traylor;Jonathan A. Fan;D. Natelson]
通讯作者:
Charlotte I. Evans;Rui Yang;Lucia T. Gan;M. Abbasi;Xifan Wang;R. Traylor;Jonathan A. Fan;D. Natelson
DOI:
10.1021/acs.nanolett.8b03153
发表时间:
2018
期刊:
Nano Letters
影响因子:
10.8
作者:
[Wang, Xifan, Evans, Charlotte I., Natelson, Douglas]
通讯作者:
Natelson, Douglas
DOI:
10.1021/acs.nanolett.0c02121
发表时间:
2020-08-12
期刊:
NANO LETTERS
影响因子:
10.8
作者:
[Cui, Longji, Zhu, Yunxuan, Natelson, Douglas]
通讯作者:
Natelson, Douglas
DOI:
10.1117/12.2289114
发表时间:
2018-01
期刊:
影响因子:
--
作者:
[D. Natelson;Charlotte I. Evans;P. Zolotavin]
通讯作者:
D. Natelson;Charlotte I. Evans;P. Zolotavin
DOI:
10.1021/acs.jpcc.9b01174
发表时间:
2019-04-18
期刊:
JOURNAL OF PHYSICAL CHEMISTRY C
影响因子:
3.7
作者:
[Evans, Charlotte I., Natelson, Douglas]
通讯作者:
Natelson, Douglas
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