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Mutual Insight on Ferroelectrics and Hybrid Halide Perovskites: A Platform for Future Multifunctional Energy Conversion

Richa PandeyCentre for Research in Nanotechnology and Science Indian Institute of Technology Bombay Powai 400076 IndiaGaurav VatsSchool of Materials Science and Engineering University of New South Wales Sydney 2052 AustraliaJae Sung YunAustralian Centre for Advanced Photovoltaics School of Photovoltaic and Renewable Energy Engineering University of New South Wales Sydney 2052 AustraliaChris BowenMaterials Research Centre Department of Mechanical Engineering University of Bath Bath BA2 7AY UKAnita Ho‐BaillieAustralian Centre for Advanced Photovoltaics School of Photovoltaic and Renewable Energy Engineering University of New South Wales Sydney 2052 AustraliaJan SeidelSchool of Materials Science and Engineering University of New South Wales Sydney 2052 AustraliaKeith T. ButlerISIS Facility Rutherford Appleton Laboratory Harwell Oxford Didcot Oxfordshire OX11 0QX UKSang Il SeokSchool of Energy and Chemical Engineering Ulsan National Institute of Science and Technology (UNIST) UNIST‐gil 50 Ulsan 44919 South Korea
2019en
ABI

Аннотация

An insight into the analogies, state-of-the-art technologies, concepts, and prospects under the umbrella of perovskite materials (both inorganic-organic hybrid halide perovskites and ferroelectric perovskites) for future multifunctional energy conversion and storage devices is provided. Often, these are considered entirely different branches of research; however, considering them simultaneously and holistically can provide several new opportunities. Recent advancements have highlighted the potential of hybrid perovskites for high-efficiency solar cells. The intrinsic polar properties of these materials, including the potential for ferroelectricity, provide additional possibilities for simultaneously exploiting several energy conversion mechanisms such as the piezoelectric, pyroelectric, and thermoelectric effect and electrical energy storage. The presence of these phenomena can support the performance of perovskite solar cells. The energy conversion using these effects (piezo-, pyro-, and thermoelectric effect) can also be enhanced by a change in the light intensity. Thus, there lies a range of possibilities for tuning the structural, electronic, optical, and magnetic properties of perovskites to simultaneously harvest energy using more than one mechanism to realize an improved efficiency. This requires a basic understanding of concepts, mechanisms, corresponding material properties, and the underlying physics involved with these effects.

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