Abolhasani Mohammad Mahdi, Naebe Minoo, Hassanpour Amiri Morteza, Shirvanimoghaddam Kamyar, Anwar Saleem, Michels Jasper J, Asadi Kamal
Max-Planck Institute for Polymer Research Ackermannweg 10 Mainz 55128 Germany.
Chemical Engineering Department University of Kashan Kashan 8731753153 Iran.
Adv Sci (Weinh). 2020 Jun 3;7(13):2000517. doi: 10.1002/advs.202000517. eCollection 2020 Jul.
Hierarchically porous piezoelectric polymer nanofibers are prepared through precise control over the thermodynamics and kinetics of liquid-liquid phase separation of nonsolvent (water) in poly(vinylidene fluoride-trifluoroethylene) (P(VDF-TrFE)) solution. Hierarchy is achieved by fabricating fibers with pores only on the surface of the fiber, or pores only inside the fiber with a closed surface, or pores that are homogeneously distributed in both the volume and surface of the nanofiber. For the fabrication of hierarchically porous nanofibers, guidelines are formulated. A detailed experimental and simulation study of the influence of different porosities on the electrical output of piezoelectric nanogenerators is presented. It is shown that bulk porosity significantly increases the power output of the comprising nanogenerator, whereas surface porosity deteriorates electrical performance. Finite element method simulations attribute the better performance to increased volumetric strain in bulk porous nanofibers.
通过精确控制聚偏二氟乙烯 - 三氟乙烯(P(VDF-TrFE))溶液中非溶剂(水)的液 - 液相分离的热力学和动力学,制备出具有分级多孔结构的压电聚合物纳米纤维。通过制造仅在纤维表面有孔、或表面封闭但仅在纤维内部有孔、或在纳米纤维的体积和表面均均匀分布孔的纤维来实现分级结构。针对分级多孔纳米纤维的制备,制定了指导方针。给出了不同孔隙率对压电纳米发电机电输出影响的详细实验和模拟研究。结果表明,体孔隙率显著提高了组成纳米发电机的功率输出,而表面孔隙率则会降低电性能。有限元方法模拟将更好的性能归因于块状多孔纳米纤维中体积应变的增加。