Kim Seung-Hyun, Ha Jong-Wook, Lee Sang Goo, Sohn Eun-Ho, Park In Jun, Kang Hong Suk, Yi Gi-Ra
School of Chemical Engineering , Sungkyunkwan University , Suwon 16419 , Republic of Korea.
Interface Materials and Chemical Engineering Research Center , Korea Research Institute of Chemical Technology , Daejeon 34114 , Republic of Korea.
Langmuir. 2019 Jul 2;35(26):8816-8822. doi: 10.1021/acs.langmuir.9b00546. Epub 2019 Jun 19.
We prepared F-coated rutile titanium dioxide nanoparticles (r-TiO NPs) via simple thermal annealing of titania NPs in poly(vinylidene fluoride) (PVDF) and demonstrated that the F-coated r-TiO NP-doped composite film could efficiently induce piezoelectric phase transition of non-electroactive PVDF due to highly electronegative F bonds on the surface of these NPs. In the case of a 2.0 wt % composite film, 99.20% of the non-electroactive PVDF was transformed into the electroactive phase. Additionally, utilizing the F-coated r-TiO NPs for a piezoelectric device led to an enhancement of the piezoelectric performance. With the 5.0 wt % composite film, the resulting piezoelectric device exhibited voltage generation of 355 mV, whereas a device with the innate r-TiO NPs exhibited voltage generation of only 137 mV. Furthermore, because of optical inactivity of F-coated r-TiO NPs, the piezoelectric films exhibited high stability under 64 h of photoirradiation at an intensity of 0.1 W/cm. These results indicate that the F-coated r-TiO NP-doped composite films could be useful for various applications, including outdoor energy-harvesting, self-powered wearable devices, and portable sensors.
我们通过在聚偏氟乙烯(PVDF)中对二氧化钛纳米颗粒进行简单的热退火制备了氟包覆金红石型二氧化钛纳米颗粒(r-TiO NPs),并证明氟包覆的r-TiO NP掺杂复合膜可由于这些纳米颗粒表面的高电负性氟键而有效地诱导非电活性PVDF的压电相变。对于2.0 wt%的复合膜,99.20%的非电活性PVDF转变为电活性相。此外,将氟包覆的r-TiO NPs用于压电器件可提高压电性能。对于5.0 wt%的复合膜,所得压电器件的电压产生为355 mV,而具有天然r-TiO NPs的器件的电压产生仅为137 mV。此外,由于氟包覆的r-TiO NPs的光学惰性,压电膜在强度为0.1 W/cm的光照射64小时下表现出高稳定性。这些结果表明,氟包覆的r-TiO NP掺杂复合膜可用于各种应用,包括户外能量收集、自供电可穿戴设备和便携式传感器。