Defect engineering in thermoelectric materials: what have we learned?
Инженерия дефектов в термоэлектрических материалах: чему мы научились?
2021-01-01
SCID: 54.1/v4wwjvga
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defect engineeringelectrical and thermal transport propertiesplanar defects (twin boundaries, stacking faults, grain boundaries)point defects (vacancies, interstitials, antisites)thermoelectric materials
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Abstract (AI)
Thermoelectric energy conversion is an all solid-state technology that relies on exceptional semiconductor materials that are generally optimized through sophisticated strategies involving the engineering of defects in their structure. In this review, we summarize the recent advances of defect engineering to improve the thermoelectric (TE) performance and mechanical properties of inorganic materials. First, we introduce the various types of defects categorized by dimensionality, i.e. point defects (vacancies, interstitials, and antisites), dislocations, planar defects (twin boundaries, stacking faults and grain boundaries), and volume defects (precipitation and voids). Next, we discuss the advanced methods for characterizing defects in TE materials. Subsequently, we elaborate on the influences of defect engineering on the electrical and thermal transport properties as well as mechanical performance of TE materials. In the end, we discuss the outlook for the future development of defect engineering to further advance the TE field.
Key Findings
1
Advanced characterization methods are essential and reviewed to identify and quantify defects in TE materials.
2
Defect engineering influences both electrical and thermal transport properties as well as mechanical performance, enabling targeted improvements in TE behavior.
3
Defect engineering is a central strategy to optimize thermoelectric (TE) performance and mechanical properties of inorganic semiconductor materials.
4
Defects in TE materials can be classified by dimensionality: point defects, dislocations, planar defects, and volume defects, each affecting properties differently.
5
The review outlines future directions for defect engineering to further advance the thermoelectric field.
Research Object
Inorganic thermoelectric materials (semiconductor materials used for thermoelectric energy conversion)
Research Subject
Defect engineering effects on thermoelectric performance and mechanical properties, including how various defect types (point defects, dislocations, planar and volume defects) influence electrical and thermal transport and mechanical behavior
Publication Details
Publication Date
2021-01-01
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