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Relaxation of competing electromechanical couplings in murine artery

机译:小鼠动脉竞争机电联轴器的放松

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摘要

Piezoelectricity and pyroelectricity in biological tissues, which originate from oriented fibrous proteins with a polar axis, have long been suggested to play important roles in physiological functions. The possible manipulation of their polarity by external mechanisms, however, remains unsettled. We revisit this problem here using piezoresponse force microscopy (PFM) as the tool and the intima layer of murine artery as a model system. By carefully examining first and second harmonic piezoresponses at both selected points and through spatial mapping, we establish that electromechanical coupling probed by PFM is predominantly piezoelectric in the intima layer, while the quadratic effect makes only minor contributions. More importantly, we observe competition between the linear and quadratic effects after removal of DC biases applied to the sample surface, revealing not only interesting relaxation dynamics, but also highly asymmetric piezoresponse. Positive DC rotates dipoles in tropoelastin monomers away with reduced alignment, while negative DC aligns dipoles more leading to enhanced piezoresponse. The electric manipulation of biological polarity is thus demonstrated, with the relaxation time constant determined on the order of 0.1 s, much slower than classical ferroelectrics.
机译:生物组织中的压电和热电性,其源于具有极轴的取向纤维蛋白,已经长期以来在生理功能中起重要作用。然而,可能通过外部机制操纵它们的极性仍未令人不安。我们使用压电响应力显微镜(PFM)作为模型系统的工具和鼠动脉内膜层来重新审视这个问题。通过仔细检查两个选定的点和第二次谐波压电电流,我们通过空间映射确定PFM探测的机电耦合主要是在内部层中的压电,而二次效果仅贡献。更重要的是,我们在去除施加到样品表面的直流偏差后,观察线性和二次效应之间的竞争,不仅揭示了有趣的松弛动态,还具有高度不对称的压电。阳性直流在Tropoelastin单体中旋转偶极物,减少对准,而负直流使偶极子变得更加导致增强的压电响应。因此证明了生物学极性的电动操作,随着0.1秒的量级确定的弛豫时间恒定,比古典铁电解得多。

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  • 来源
    《Applied Physics Letters》 |2020年第14期|143701.1-143701.6|共6页
  • 作者单位

    Shenzhen Key Laboratory of Nanobiomechanics Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 Guangdong China CAS Key Laboratory of Quantitative Engineering Biology Shenzhen Institute of Synthetic Biology Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 Guangdong China;

    Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 Guangdong China Academy for Advanced Interdisciplinary Studies Southern University of Science and Technology Shenzhen 518055 Guangdong China Department of Mechanical Engineering University of Washington Seattle Washington 98195 USA;

    Shenzhen Key Laboratory of Nanobiomechanics Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 Guangdong China;

    Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education School of Materials Science and Engineering Xiangtan University Xiangtan 411105 Hunan China;

    Shenzhen Key Laboratory of Nanobiomechanics Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 Guangdong China School of Materials Science and Engineering Hunan University of Science and Technology Xiangtan 411201 Hunan China;

    CAS Key Laboratory of Quantitative Engineering Biology Shenzhen Institute of Synthetic Biology Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 Guangdong China;

    Paul C. Lauterbur Research Center for Biomedical Imaging Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 Guangdong China;

    Shenzhen Key Laboratory of Nanobiomechanics Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Shenzhen 518055 Guangdong China Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518055 Guangdong China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 22:18:03

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