Lee Gyudong, Song Seongkyu, Jeong Woo Hyeon, Lee Cheoljae, Kim June-Seo, Lee Ju-Hyuck, Choi Jongmin, Choi Hyosung, Kim Younghoon, Lim Sung Jun, Jeong Soon Moon
Division of Nanotechnology, DGIST, Daegu, 42988, Republic of Korea.
Department of Energy Science and Engineering, DGIST, Daegu, 42988, Republic of Korea.
Small. 2024 Apr;20(17):e2307089. doi: 10.1002/smll.202307089. Epub 2024 Jan 7.
Composites comprising copper-doped zinc sulfide phosphor microparticles embedded in polydimethylsiloxane (ZnS:Cu-PDMS) have received significant attention over the past decade because of their bright and durable mechanoluminescence (ML); however, the underlying mechanism of this unique ML remains unclear. This study reports empirical and theoretical findings that confirm this ML is an electroluminescence (EL) of the ZnS:Cu phosphor induced by the triboelectricity generated at the ZnS:Cu microparticle-PDMS matrix interface. ZnS:Cu microparticles that exhibit bright ML are coated with alumina, an oxide with strong positive triboelectric properties; the contact separation between this oxide coating and PDMS, a polymer with strong negative triboelectric properties, produces sufficient interfacial triboelectricity to induce EL in ZnS:Cu microparticles. The ML of ZnS:Cu-PDMS composites varies on changing the coating material, exhibiting an intensity that is proportional to the amount of interfacial triboelectricity generated in the system. Finally, based on these findings, a mechanism that explains the ML of phosphor-polymer elastic composites (interfacial triboelectric field-driven alternating-current EL model) is proposed in this study. It is believed that understanding this mechanism will enable the development of new materials (beyond ZnS:Cu-PDMS systems) with bright and durable ML.
在过去十年中,包含嵌入聚二甲基硅氧烷中的铜掺杂硫化锌磷光体微粒的复合材料(ZnS:Cu-PDMS)因其明亮且持久的机械发光(ML)而备受关注;然而,这种独特的机械发光的潜在机制仍不清楚。本研究报告了实证和理论结果,证实这种机械发光是由ZnS:Cu微粒与PDMS基体界面处产生的摩擦电所诱导的ZnS:Cu磷光体的电致发光(EL)。表现出明亮机械发光的ZnS:Cu微粒涂覆有氧化铝,氧化铝是一种具有强正摩擦电性能的氧化物;这种氧化物涂层与具有强负摩擦电性能的聚合物PDMS之间的接触分离产生了足够的界面摩擦电,从而在ZnS:Cu微粒中诱导电致发光。ZnS:Cu-PDMS复合材料的机械发光随涂层材料的变化而变化,其强度与系统中产生的界面摩擦电的量成正比。最后,基于这些发现,本研究提出了一种解释磷光体-聚合物弹性复合材料机械发光的机制(界面摩擦电场驱动的交流电致发光模型)。相信理解这一机制将有助于开发具有明亮且持久机械发光的新材料(超越ZnS:Cu-PDMS体系)。