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GOALI: Dynamics of Ultrasound-Responsive Polymeric Systems: from Atoms to Devices

GOALI: Dynamics of Ultrasound-Responsive Polymeric Systems: from Atoms to Devices
GOALI:超声响应聚合物系统的动力学:从原子到设备
批准号:
2016474
负责人:
Shima Shahab
金额:
$51.12万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
已结题
起止时间:
2020-08-01 至 2024-07-31

项目摘要

项目成果

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中文摘要
翻译
形状记忆聚合物是一类新兴的智能材料,当受到热、光和磁场等外部刺激时,它能够从变形的临时形状恢复到原来的永久形状。这些聚合物最近在包括机器人、生物医学设备和软电子设备在内的许多应用中获得了巨大的兴趣。在许多这样的应用中,工业上迫切需要用更有效和更灵活的方法来取代用于驱动聚合物的传统触发方法。这项GOALI学术联络机会(GOALI)基金将研究高强度聚焦超声作为一种新颖和有前景的刺激,具有独特的能力来驱动形状记忆聚合物的受控形状恢复。聚焦超声可以远程和局部地激活聚合物,是非侵入性的,并且具有生物兼容性。这些特性使该方法成为一种优越的候选方法,特别是在生物医学应用中。这项研究将由工业合作伙伴MedShape Inc.整合到工业实践中,为制造用于医疗应用的超声敏感聚合物提供实用方法。MedShape公司将制造工业形状记忆聚合物致动器,并为学生提供实习机会。该研究奖的成果将提升美国医疗行业的核心竞争力。该奖项将支持高强度聚焦超声场下形状记忆聚合物动力学的实验和多尺度建模。这项研究旨在填补在考虑与声响应聚合物的高激发电平相关的时变和非线性效应方面的知识空白。将建立一个多物理框架,将原子尺度上的动态变形机制与宏观尺度上的聚合物响应联系起来。然后,这个框架将与实验相结合,根据外部长度尺度和内在材料特性,有效地设计超声响应聚合物的化学组成和晶体结构。这项研究的成果将揭开超声波加热聚合物的声诱导热驱动的未知机制,并有助于优化高强度聚焦超声场中形状记忆聚合物结构的形状固定和恢复的动态过程。这些发现还将揭示添加制造的形状记忆聚合物的几何方面将如何影响聚合物在各种超声场中的动力学。与工业合作伙伴MedShape Inc.合作,在该奖项支持的研究中开发的方法将用于设计和制造具有医疗应用的新型超声响应型聚合物设备。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势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
Shape memory polymers are an emerging class of smart materials that have the ability to return from a deformed temporary shape to their original permanent shape when subjected to an external stimulus such as heat, light, and a magnetic field. These polymers have recently gained substantial interest in many applications including robotics, biomedical devices, and soft electronics. In many of these applications, there is an immediate industrial need for replacing conventional triggering methods for actuating the polymers with a more efficient and flexible method. This Grant Opportunities for Academic Liaison with Industry (GOALI) grant will investigate high-intensity focused ultrasound as a novel and promising stimulus with unique capabilities to actuate the controlled shape recovery of shape memory polymers. Focused ultrasound actuates the polymer remotely and locally, is noninvasive, and is biocompatible. These properties make the methodology a superior candidate, particularly for biomedical applications. The research will be integrated into industrial practice by the industrial partner, MedShape Inc., to provide practical approaches for the fabrication of ultrasound-sensitive polymers for medical applications. MedShape Inc. will fabricate industrial shape memory polymer actuators and provide student internship opportunities. The outcomes of this research award will increase the core competencies of U.S. medical industries.This award will support the experiments and multiscale modeling of the dynamics of shape memory polymers under high-intensity focused ultrasound fields. The research aims at filling a knowledge gap in terms of considering time-variant and nonlinear effects associated with high excitation levels in acoustic-responsive polymers. A multiphysics framework will be established to bridge the dynamical deformation mechanisms at the atomistic scale to the response of the polymer at the macroscale. This framework will then be combined with experiments to efficiently design the chemical composition and crystalline structure of ultrasound-responsive polymers, based on extrinsic length scales and intrinsic material properties. The output of the research effort will unravel the unknown mechanisms of acoustic-induced thermal actuation, by which ultrasound waves heat polymers, and help in optimizing the dynamic processes of shape fixation and recovery of shape memory polymer structures in high-intensity focused ultrasound fields. The findings will also uncover how the geometrical aspects of the additively manufactured shape memory polymers will affect the dynamics of the polymer in various ultrasound fields. In collaboration with the industrial partner, MedShape Inc., the approach developed in the research supported by this award will be utilized to design and fabricate novel ultrasound-responsive polymer-based devices with medical applications.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(4)
专著(0)
科研奖励(0)
会议论文
Achieving multimodal locomotion by a crosslinked poly(ethylene-co-vinyl acetate)-based two-way shape memory polymer
通过交联聚(乙烯-醋酸乙烯酯)基双向形状记忆聚合物实现多模式运动
DOI: 10.1088/1361-665x/ac3c02
发表时间: 2021
期刊: Smart Materials and Structures
影响因子: 4.1
作者: [Zhao, Yao, Peng, Kaiyuan, Xi, Jiaxin, Shahab, Shima, Mirzaeifar, Reza]
通讯作者: Mirzaeifar, Reza
DOI: 10.1088/1361-6528/abbfd2
发表时间: 2021-01-22
期刊: NANOTECHNOLOGY
影响因子: 3.5
作者: [Peng, Kaiyuan, Shahab, Shima, Mirzaeifar, Reza]
通讯作者: Mirzaeifar, Reza
DOI: 10.1021/acsami.0c18413
发表时间: 2020-12-30
期刊: ACS APPLIED MATERIALS & INTERFACES
影响因子: 9.5
作者: [Peng, Kaiyuan, Zhao, Yao, Mirzaeifar, Reza]
通讯作者: Mirzaeifar, Reza
CAREER: Dynamics of Holographic Acoustic Lenses for Nonlinear Ultrasound Focusing
EAGER: Understanding and Leveraging Nonlinear Effects in Acoustic Holograms
Acoustic energy transfer for wireless charging of low-power sensors, control devices, and communication networks
国内基金
海外基金
β-arrestin2- MFN2-Mitochondrial Dynamics轴调控星形胶质细胞功能对抑郁症进程的影响及机制研究
  • 批准号:
  • 项目类别:
    省市级项目
  • 资助金额:
    --
  • 批准年份:
    2023
  • 负责人:
  • 依托单位: