2022
DOI: 10.3390/polym14061232
|View full text |Cite
|
Sign up to set email alerts
|

Flexible Sensory Systems: Structural Approaches

Abstract: Biology is characterized by smooth, elastic, and nonplanar surfaces; as a consequence, soft electronics that enable interfacing with nonplanar surfaces allow applications that could not be achieved with the rigid and integrated circuits that exist today. Here, we review the latest examples of technologies and methods that can replace elasticity through a structural approach; these approaches can modify mechanical properties, thereby improving performance, while maintaining the existing material integrity. Furt… Show more

Help me understand this report

Search citation statements

Order By: Relevance

Paper Sections

Select...
3
2

Citation Types

1
4
0

Year Published

2022
2022
2024
2024

Publication Types

Select...
5

Relationship

0
5

Authors

Journals

citations
Cited by 7 publications
(5 citation statements)
references
References 301 publications
(566 reference statements)
1
4
0
Order By: Relevance
“…This clear distinction in the gas sensing properties highlights the role played by amorphous ZnO in the Co–ZnO–N/C material. The present sensor response and recovery times are faster than the reported literature under similar operating conditions for systems based on ZnO. , Non-noble metal-based Co–ZnO–N/C could sense H 2 much faster even when compared to Pd-, Pt-, and Au-decorated ZnO nanostructures (Table S1).…”
Section: Resultssupporting
confidence: 55%
See 4 more Smart Citations
“…This clear distinction in the gas sensing properties highlights the role played by amorphous ZnO in the Co–ZnO–N/C material. The present sensor response and recovery times are faster than the reported literature under similar operating conditions for systems based on ZnO. , Non-noble metal-based Co–ZnO–N/C could sense H 2 much faster even when compared to Pd-, Pt-, and Au-decorated ZnO nanostructures (Table S1).…”
Section: Resultssupporting
confidence: 55%
“…This is remarkable as most of the studies reported for ZnO (nanopillars, nanorod arrays, nanoassemblies, and p–n homojunction) uses temperatures >200 °C for sensing H 2 . Several other nanostructures of ZnO, including nanopillar, nanorod arrays, nanoassemblies, and p–n homojunction, exhibited Δ R o / R a in the range of 0.1–10 S only at temperatures ≥300 °C. ,,,,, Precious metals such as Pd and Au are hybridized with ZnO for room-temperature sensing of H 2 . As evident from Table S1, Pd-assisted ZnO nanowires and Au-decorated rGO/ZnO nanostructures exhibited recovery times several times higher (66–612 s) than found in this study at room temperature. , …”
Section: Resultsmentioning
confidence: 53%
See 3 more Smart Citations