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CAREER: Fundamentals of Entropy-Driven Mechanics of Flexible Nanostructures

CAREER: Fundamentals of Entropy-Driven Mechanics of Flexible Nanostructures
职业:柔性纳米结构的熵驱动力学基础
批准号:
2237530
负责人:
Fatemeh Ahmadpoor
金额:
$53.1万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2023
资助国家:
美国
项目状态:
未结题
起止时间:
2023-06-01 至 2028-05-31

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中文摘要
翻译
这个教师早期职业发展(CAREER)奖将支持研究了解柔性,板状纳米结构的基本力学。这些纳米结构的实例包括低维材料,例如,二硫化钼、磷烯、氮化硼和MXenes,以及生物膜。这些纳米结构在纳米传感器、生物医学设备、基因治疗、纳米电子学、能量收集和结构复合材料中具有应用。这些纳米结构的一个特殊方面是,由于储存的热能,它们不断经历随机变形,这会影响它们的机械行为和对外部刺激的反应。然而,事实证明,将这种效应纳入传统的力学模型是相当困难的。该项目将开发耦合统计力学和固体力学模型,以解释柔性纳米结构中的大的热波动。由此产生的框架将使下一代多功能纳米结构的机械引导设计能够应用于国防,医疗保健和环境领域。该奖项还将支持下一代跨学科工程师的教育,特别是促进妇女和少数族裔的教育,并通过音乐数学项目等创新活动促进K-12学生的STEM教育。由于弯曲刚度低,热波动是所有柔性纳米结构的普遍特征,这会影响其宏观力学行为,包括性能、结构稳定性、和动态。在本计画中,板与壳的连续力学模型将与统计力学的概念整合,以描述:(1)有缺陷的脉动膜的宏观力学性质,(2)弹性脉动膜的不稳定性、缺陷敏感性与屈曲行为,以及(3)脉动膜的动力学、自由振动与强迫振动的性质。这些研究是具有挑战性的,由于非线性,非传统的边界条件,以及普遍存在的热波动和材料缺陷。所开发的连续统统计力学平台可扩展到其他小尺度问题,包括纳米材料的熵驱动失效机制,纳米材料的机械耦合特性,以及生物活性物质。该项目由工程理事会(ENG)土木、机械和制造创新部(CMMI)的材料和结构力学(MoMS)计划和生物力学和机械生物学(BMMB)计划共同资助。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
This Faculty Early Career Development (CAREER) award will support research into understanding the fundamental mechanics of flexible, plate-like nanostructures. Examples of these nanostructures include low-dimensional materials, e.g., molybdenum disulphide, phosphorene, boron nitride, and MXenes, and biomembranes. These nanostructures have applications in nanosensors, biomedical devices, gene therapy, nanoelectronics, energy harvesting, and structural composites. One special aspect of these nanostructures is that they constantly experience random deformations due to stored thermal energy, which affects their mechanical behavior and response to external stimuli. It has proven quite difficult, however, to incorporate this effect into conventional mechanical models. This project will develop coupled statistical mechanics and solid mechanics models that will account for large thermal fluctuations in flexible nanostructures. The resultant framework will enable mechanics-guided design of next-generation multifunctional nanostructures for applications in defense, healthcare, and environmental sectors. The award will also support education of next generation interdisciplinary engineers, especially promoting women and minorities, as well as facilitate STEM education for K-12 students through innovative activities, such as a Musical Math Program.Thermal fluctuations are a universal characteristic of all flexible nanostructures due to their low bending stiffness, which impacts their macroscopic mechanical behavior including properties, structural stability, and dynamics. In this project, continuum mechanics models of plates and shells will be integrated with concepts of statistical mechanics to characterize: (1) the macroscopic mechanical properties of a fluctuating membrane with imperfections, (2) the instability, imperfection sensitivity, and buckling behavior of elastic fluctuating membranes, and (3) the dynamics, and properties of free and forced vibrations of fluctuating membranes. These studies are challenging due to nonlinearities, non-traditional boundary conditions, and ubiquitous presence of thermal fluctuations and material imperfections. The developed continuum-statistical mechanics platform would be extendable to other small-scale problems including entropy-driven failure mechanism of nanomaterials, mechanically coupled properties of nanomaterials, and active matters in biology. This project is jointly funded by the Mechanics of Materials and Structures (MoMS) Program and the Biomechanics and Mechanobiology (BMMB) program in the Division of Civil, Mechanical and Manufacturing Innovation (CMMI) in the Directorate for Engineering (ENG).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.
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