Cho Woongbi, Kim Sungsu, Lee Hyeonhoo, Han Nara, Kim Hyunki, Lee Minbaek, Han Tae Hee, Wie Jeong Jae
Department of Organic and Nano Engineering, Hanyang University, 222 Wangsimni-ro, Seongdong-gu, Seoul, 04763, Republic of Korea.
Human-Tech Convergence Program, Hanyang University, 222 Wangsimni-ro, Seongdong-gu, Seoul, 04763, Republic of Korea.
Adv Mater. 2024 Nov;36(44):e2404163. doi: 10.1002/adma.202404163. Epub 2024 Aug 7.
State-of-the-art triboelectric nanogenerators (TENGs) typically employ fluoropolymers, highly negative chargeable materials in triboelectric series. However, many researchers nowadays are concerned about environmental pollution caused by poly-and per-fluoroalkyl substances (PFAS) due to their critical immunotoxicity as fluoropolymers are likely to release PFAS into the ecosystem during their life cycle. Herein, a sulfur-rich polymer (SRP)/MXene composite, offering high-performance yet sustainable TENG is developed. Value-addition of sulfur into SRP-based TENG has huge advantages since sulfur is abundant waste from petroleum refining and possesses the highest electron affinity (-200 kJ mol) among polymerizable atoms. MXene segregated structure is introduced into SRP to achieve homogeneous distribution without electrical percolation by utilizing below 0.5 wt% of MXene, resulting in a significantly enhanced dielectric constant without a drastic increase of dielectric loss. Due to homogeneous MXene distribution, SRP/MXene composite-based TENG demonstrates 2.9 times and 19.5 times enhances peak voltage and peak current compared to previous SRP-based TENGs. Additionally, it exhibits reusability without critical reduction of modulus and TENG performance due to dynamically exchangeable disulfide bonds. Finally, after the corona discharging and scaling-up process to a 4-inch wafer size, SRP/MXene composite-based TENG exhibits an 8.4 times improvement in peak power density, reaching 3.80 W m compared to previous SRP-based TENGs.
最先进的摩擦纳米发电机(TENGs)通常采用含氟聚合物,这是摩擦电序列中高负电荷性的材料。然而,如今许多研究人员担心聚和全氟烷基物质(PFAS)造成的环境污染,因为它们具有严重的免疫毒性,因为含氟聚合物在其生命周期中可能会将PFAS释放到生态系统中。在此,开发了一种富含硫的聚合物(SRP)/MXene复合材料,可提供高性能且可持续的TENG。将硫添加到基于SRP的TENG中具有巨大优势,因为硫是石油精炼产生的丰富废料,并且在可聚合原子中具有最高的电子亲和力(-200 kJ mol)。通过使用低于0.5 wt%的MXene将MXene偏析结构引入SRP中,以实现均匀分布而无电渗流,从而在不显著增加介电损耗的情况下显著提高介电常数。由于MXene分布均匀,基于SRP/MXene复合材料的TENG与先前基于SRP的TENG相比,峰值电压和峰值电流提高了2.9倍和19.5倍。此外,由于动态可交换的二硫键,它具有可重复使用性,且模量和TENG性能不会显著降低。最后,经过电晕放电和放大到4英寸晶圆尺寸的过程后,基于SRP/MXene复合材料的TENG的峰值功率密度提高了8.4倍,与先前基于SRP的TENG相比达到3.80 W m。