Two-Dimensional Mechano-thermoelectric Heterojunctions for Self-Powered Strain Sensors.
basic_science · Level V
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- Record sourced from PubMed, PMID 34387505.
- Also identified by DOI 10.1021/acs.nanolett.1c02331.
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Abstract
We here demonstrate the multifunctional properties of atomically thin heterojunctions that are enabled by their strong interfacial interactions and their application toward self-powered sensors with unprecedented performance. Bonding between tin diselenide and graphene produces thermoelectric and mechanoelectric properties beyond the ability of either component. A record-breaking ZT of 2.43 originated from the synergistic combination of graphene's high carrier conductivity and SnSe<sub>2</sub>-mediated thermal conductivity lowering. Moreover, spatially varying interaction at the SnSe<sub>2</sub>/graphene interface produces stress localization that results in a novel 2D-crack-assisted strain sensing mechanism whose sensitivity (GF = 450) is superior to all other 2D materials. Finally, a graphene-assisted growth process permits the formation of high-quality heterojunctions directly on polymeric substrates for flexible and transparent sensors that achieve self-powered strain sensing from a small temperature gradient. Our work enhances the fundamental understanding of multifunctionality at the atomic scale and provides a route toward structural health monitoring through ubiquitous and smart devices.
Medical subject headings
- Graphite
- Wearable Electronic Devices