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  • 主管单位:
  • 中国科学技术协会
  • 主办单位:
  • 中国仪器仪表学会、上海光学仪器研究所、中国光学学会工程光学专业委员会
  • 主  编:
  • 庄松林
  • 地  址:
  • 上海市军工路516号上海理工大学《光学仪器》编辑部
  • 邮政编码:
  • 200093
  • 联系电话:
  • 021-55270110
  • 电子邮件:
  • gxyq@usst.edu.cn
  • 国际标准刊号:
  • 1005-5630
  • 国内统一刊号:
  • 31-1504/TH
  • 邮发代号:
  • 单  价:
  • 15.00
  • 定  价:
  • 90.00
基于液晶5CB的静电纺丝光控形变器件
The optical responsive deformation device fabricated by electrospinning liquid crystal 5CB
投稿时间:2018-03-16  
DOI:10.3969/j.issn.1005-5630.2019.01.014
中文关键词:  静电纺丝  光控形变  液晶小分子5CB  碳纳米管
英文关键词:electrospinning  optical responsive deformation  liquid crystal 5CB  carbon nanotubes
基金项目:
作者单位E-mail
倪裕杰 上海理工大学 光电信息与计算机工程学院, 上海 200093  
张肖凡 上海理工大学 光电信息与计算机工程学院, 上海 200093  
陈克坚 上海理工大学 光电信息与计算机工程学院, 上海 200093 ee.kjchen@gmail.com 
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中文摘要:
      光控形变器件以其高响应速度在仿生学领域得到广泛关注。通过静电纺丝的方式,成功制备出了一种在可见光波段可实现形变响应并恢复的器件。通过在聚氨酯(TPU)弹性基底膜上静电纺丝有序排列的液晶小分子4-氰基-4'-戊基联苯(5CB)的聚乙烯醇(PVA)纤维膜,可以使其中的5CB在吸热后发生相转变并产生体积收缩,最终带动基底膜实现弯曲形变。通过静电纺丝或涂覆的方式添加光热转换率高的碳纳米管(CNTs),可以进一步赋予该类器件光控响应能力。结果表明,制备的器件因其良好的光控形变性能和光控响应性能,故可作为执行器用于人体仿生学等领域。
英文摘要:
      Optical responsive deformation device has drawn wide attention in the field of bionics by its rapid response. In this paper, the prepared device that can achieves deforming and recovery property in the visible light band was successfully fabricated by using the electrospinning technology. By electrospinning the polyvinyl alcohol (PVA) fiber film contained with orderly arranged nematic liquid crystal 4-cyano-4'-pentylbiphenyl (5CB) upon the elastic thermoplastic polyurethane (TPU) substrate, the phase transition and the volume shrunk of the heated liquid crystal 5CB embedded in the electspun fiber film can be achieved. Finally, the substrate film can be blended by the shrinking of 5CB. Through adding the carbon nanotubes (CNTs) with well photo-thermal conversion efficiency in the visible light region to the devices by the way of electrospinning or coating, devices can be endowed with optical responsive deforming properties. Experimental results show that the prepared devices can be applied in the field of human bionics as the actuator by its prominent optical deforming and responding properties.
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