A semi-permanent and durable nanoscale-crack-based sensor by on-demand healing

  • Byeonghak Park
  • , Sori Lee
  • , Hyesu Choi
  • , Jong Uk Kim
  • , Haeleen Hong
  • , Chanho Jeong
  • , Daeshik Kang
  • , Tae Il Kim

Research output: Contribution to journalArticlepeer-review

Abstract

Although sensitivity and durability are desirable in a sensor, both of them cannot be easily achieved. Site-specific and effective signal acquisition on the limited area of a sensor inevitably allows fatigue accumulation and contamination. For example, an ultrasensitive nanoscale-crack-based sensor for detecting a mechanical stimulus with tremendous sensitivity (a gauge factor greater than 2000 under 2% strain), yet limited durability (up to a few thousand stretching cycles in tensile tests) has been presented previously. Herein, we suggest a simple yet robust nanoscale-crack-based sensor that achieves remarkable durability through the use of a self-healable polymer. The self-healable polymer helps the crack gap recover and maintain high stability for 1 million cycles under 2% strain. Moreover, site-specific recovery with infrared light irradiation was demonstrated with monolithic arrayed sensors. The proposed strategy provides a unique solution to achieving highly enhanced durability and high mechanosensitivity, which are typically incompatible.

Original languageEnglish
Pages (from-to)4354-4360
Number of pages7
JournalNanoscale
Volume10
Issue number9
DOIs
StatePublished - 2018

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