Liow Chi Hao, Lu Xin, Zeng Kaiyang, Li Shuzhou, Ho Ghim Wei
Department of Electrical and Computer Engineering, National University of Singapore, 4 Engineering Drive 3, Singapore, 117583, Singapore.
Department of Mechanical Engineering, National University of Singapore, 9 Engineering Drive 1, Singapore, 117576, Singapore.
Small. 2019 Sep;15(36):e1903042. doi: 10.1002/smll.201903042. Epub 2019 Jul 24.
Though plasmonic effect is making some headway in the energy harvesting realm, its fundamental charge transfer mechanism to a large extent is attributed to the hot-carrier generation at the contact interface. Herein this work attempts to elucidate the physical origin of light induced plasmo-pyroelectric enhancement based on charge density manipulation on surface state in the vicinity of the metal-ferroelectric contact interface. More importantly, by tuning the band bending, it is shown that the charge density on the surface state of a hybrid plasmo-pyroelectric (BaTiO -Ag) nanosystem can be manipulated and largely increased under the resonant blue light illumination (363 nm). It is also demonstrated that owing to this effect, the spatial pyroelectric activity of a hybrid plasmo-pyroelectric nanosystem governs 46% enhancement in pyroelectric coefficient. This research highlights the optically regulated charge density in plasmo-pyroelectric nanosystems, which could pave a new avenue for energy harvesting/conversion devices with distinguished advantages in wireless, photonic-controlled, localized, and dynamic stimulation.
尽管等离子体效应在能量收集领域取得了一些进展,但其基本电荷转移机制在很大程度上归因于接触界面处的热载流子产生。在这项工作中,试图基于对金属-铁电体接触界面附近表面态电荷密度的操纵来阐明光诱导等离子体热释电增强的物理起源。更重要的是,通过调节能带弯曲表明,在共振蓝光照射(363nm)下,混合等离子体热释电(BaTiO₃-Ag)纳米系统表面态上的电荷密度可以被操纵并大幅增加。还证明了由于这种效应,混合等离子体热释电纳米系统的空间热释电活性使热释电系数提高了46%。这项研究突出了等离子体热释电纳米系统中光调控的电荷密度,这可能为在无线、光子控制、局部和动态刺激方面具有显著优势的能量收集/转换装置开辟一条新途径。