Piezoelectric and ferroelectric materials and structures for energy harvesting applications

能量收集 压电 材料科学 热电性 机械能 电阻式触摸屏 振动 铁电性 电势能 背景(考古学) 能量转换 机械工程 光电子学 电介质 声学 功率(物理) 电气工程 工程类 物理 复合材料 古生物学 热力学 生物 量子力学
作者
Chris Bowen,Hyunsun A. Kim,Paul M. Weaver,Steve Dunn
出处
期刊:Energy and Environmental Science [Royal Society of Chemistry]
卷期号:7 (1): 25-44 被引量:1072
标识
DOI:10.1039/c3ee42454e
摘要

This review provides a detailed overview of the energy harvesting technologies associated with piezoelectric materials along with the closely related sub-classes of pyroelectrics and ferroelectrics. These properties are, in many cases, present in the same material, providing the intriguing prospect of a material that can harvest energy from multiple sources including vibration, thermal fluctuations and light. Piezoelectric materials are initially discussed in the context of harvesting mechanical energy from vibrations using inertial energy harvesting, which relies on the resistance of a mass to acceleration, and kinematic energy harvesting which directly couples the energy harvester to the relative movement of different parts of a source. Issues related to mode of operation, loss mechanisms and using non-linearity to enhance the operating frequency range are described along with the potential materials that could be employed for harvesting vibrations at elevated temperatures. In addition to inorganic piezoelectric materials, compliant piezoelectric materials are also discussed. Piezoelectric energy harvesting devices are complex multi-physics systems requiring advanced methodologies to maximise their performance. The research effort to develop optimisation methods for complex piezoelectric energy harvesters is then reviewed. The use of ferroelectric or multi-ferroic materials to convert light into chemical or electrical energy is then described in applications where the internal electric field can prevent electron–hole recombination or enhance chemical reactions at the ferroelectric surface. Finally, pyroelectric harvesting generates power from temperature fluctuations and this review covers the modes of pyroelectric harvesting such as simple resistive loading and Olsen cycles. Nano-scale pyroelectric systems and novel micro-electro-mechanical-systems designed to increase the operating frequency are discussed.
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