Huang An, Zhu Yiwei, Peng Shuqiang, Tan Bin, Peng Xiangfang
Key Laboratory of Polymer Materials and Products, College of Materials Science and Engineering, Fujian University of Technology, Fuzhou, 350118, People's Republic of China.
CAS Key Laboratory of Design and Assembly of Functional Nanostructures, Fujian Key Laboratory of Nanomaterials, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, 350002, People's Republic of China.
ACS Nano. 2024 Jan 9;18(1):691-702. doi: 10.1021/acsnano.3c09043. Epub 2023 Dec 26.
While wearable self-powered electronic devices have shown promising improvements, substantial challenges persist in enhancing their electrical output and structural performance. In this work, a working mechanism involving simultaneous piezoelectric and triboelectric conversion within a monolayer-structured membrane is proposed. Single-layer binary fiber nanocomposite membranes (SBFNMs) (PVDF/CNT@PAN/CNT, DPCPC) with two distinct interpenetrating nanocomposite fibers were created through co-electrospinning, incorporating multiwalled carbon nanotubes (CNTs) into polyvinylidene fluoride (PVDF) and polyacrylonitrile (PAN), respectively. The resulting membrane demonstrated an exceptional synergistic effect of piezoelectricity and triboelectricity along with a high machine-to-electric conversion capability. The addition of CNTs increased the PVDF β-phase and the PAN planar zigzag conformation. As a result, the DPCPC-SBFNMs-based piezoelectric nanogenerator exhibited excellent electrical output (187 V, 8.0 μA, and 1.52 W m), maintaining an exceptionally high level of output voltage compared with other piezoelectric nanogenerators. It successfully illuminated 50 commercial light-emitting diodes simultaneously. The output voltage of DPCPC-SBFNMs was 5.1 and 4.6 times higher than that of PAN or PVDF single-fiber membranes, respectively. Furthermore, the peak voltage of DPCPC-SBFNMs exceeded that of co-electrospinning PVDF/CNT@PAN (DPCP) and PVDF@PAN/CNT (DPPC) by 20 and 10 V, respectively. The piezoelectric sensor made of DPCPC-SBFNMs accurately sensed human movement, ranging from tiny to large, and demonstrated utility as an alarm in medical treatment, fire fighting, and monitoring. Endogenous triboelectricity is proposed in SBFNM piezoelectric materials, enhancing electromechanical conversion and electrical output capacity, thereby promising a wide application potential in self-powered wearable electronic devices.
虽然可穿戴自供电电子设备已显示出令人鼓舞的改进,但在提高其电输出和结构性能方面仍存在重大挑战。在这项工作中,提出了一种在单层结构膜内同时进行压电和摩擦电转换的工作机制。通过共电纺丝制备了具有两种不同互穿纳米复合纤维的单层二元纤维纳米复合膜(SBFNMs)(PVDF/CNT@PAN/CNT,DPCPC),分别将多壁碳纳米管(CNTs)掺入聚偏二氟乙烯(PVDF)和聚丙烯腈(PAN)中。所得膜表现出压电和摩擦电的优异协同效应以及高的机械能到电能的转换能力。CNTs的加入增加了PVDF的β相和PAN的平面锯齿构象。结果,基于DPCPC-SBFNMs的压电纳米发电机表现出优异的电输出(187V、8.0μA和1.52W/m),与其他压电纳米发电机相比,保持了异常高的输出电压水平。它成功地同时点亮了50个商用发光二极管。DPCPC-SBFNMs的输出电压分别比PAN或PVDF单纤维膜高5.1倍和4.6倍。此外,DPCPC-SBFNMs的峰值电压分别比共电纺丝的PVDF/CNT@PAN(DPCP)和PVDF@PAN/CNT(DPPC)高出20V和10V。由DPCPC-SBFNMs制成的压电传感器能够精确感知微小到大幅度的人体运动,并在医疗、消防和监测中作为警报器发挥作用。在SBFNM压电材料中提出了内源性摩擦电,增强了机电转换和电输出能力,从而在自供电可穿戴电子设备中具有广阔的应用潜力。