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

Взаимное понимание ферроэлектриков и гибридных галоидных перовскитов: платформа для будущих многофункциональных устройств преобразования энергии
Jan Seidel, Anita Ho‐Baillie, Keith T. Butler, Sang Il Seok, Chris Bowen, Jae Sung Yun, Richa Pandey, Gaurav Vats
2019-08-22

ferroelectric perovskiteshybrid halide perovskitesmultifunctional energy conversionperovskite solar cellspiezoelectric effectpyroelectric effectthermoelectric effect
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.
1
Hybrid halide perovskites and ferroelectric perovskites share analogies that, when considered together, open new opportunities for multifunctional energy conversion and storage.
2
Hybrid perovskites' intrinsic polar properties, including possible ferroelectricity, enable simultaneous exploitation of multiple energy conversion mechanisms (piezoelectric, pyroelectric, thermoelectric) and electrical energy storage.
3
Piezoelectric, pyroelectric, and thermoelectric energy conversion in perovskites can be enhanced by changes in light intensity, enabling coupled opto-mechanical-thermal harvesting strategies.
4
Realizing multifunctional perovskite energy devices requires fundamental understanding of the concepts, mechanisms, material properties, and underlying physics of the involved effects.
5
Tuning structural, electronic, optical, and magnetic properties of perovskites can allow simultaneous harvesting via more than one mechanism, potentially improving overall device efficiency.

Perovskite materials (inorganic–organic hybrid halide perovskites and ferroelectric perovskites)

Their multifunctional energy conversion and storage-related properties and mechanisms, specifically intrinsic polar properties (ferroelectricity), and coupled energy-harvesting effects (piezoelectric, pyroelectric, thermoelectric) plus tuning of structural, electronic, optical, and magnetic properties to enable simultaneous multi‑mechanism energy harvesting and improved device efficiency

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2019-08-22
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Jan Seidel
Anita Ho‐Baillie
Keith T. Butler
Sang Il Seok
Chris Bowen
Jae Sung Yun
Richa Pandey
Gaurav Vats
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