Skip to main navigation Skip to search Skip to main content

Controlling thermoreversibility and hole conductivity in thermoresponsive ionic biogels using phase morphology for neurohaptics

  • Ankan Dutta
  • , Md Abu Sayeed Biswas
  • , Ethan Gerhard
  • , Mayukh Das
  • , Long Meng
  • , Wanqing Zhang
  • , Wenjie Li
  • , Arantza Moreno Calva
  • , Shakul Pathak
  • , Jia Yu Yang
  • , Junyi Yin
  • , Jordan Meyet
  • , Shuvendu Das
  • , Bed Poudel
  • , Abu Musa Abdullah
  • , Yuju Che
  • , Cheng Hsin Chuang
  • , Jian Yang
  • , Sihong Wang
  • , Xiaogang Hu
  • Saptarshi Das, Huanyu Cheng

Research output: Contribution to journalArticlepeer-review

Abstract

Integrating thermoreversibility with electrical conductivity in a unified hydrogel platform enables long-term, reusable through-hair neural interfaces. However, achieving both simultaneously remains challenging, as thermoreversibility demands network reorganization while conductivity necessitates network percolation. Here, we engineer phase morphology by controlling the components' viscoelastic state during mixing. Ionically conductive nucleated morphologies illustrated by liquid-liquid phase separation exhibit rapid thermoreversibility, whereas electrically conductive bicontinuous phases demonstrated by viscoelastic phase separation achieve a marginal gel-sol transition and an ultralow storage modulus of ~1.7 kilopascals while simultaneously achieving a conductivity of 7.5 siemens per centimeter or transconductance of 5.1 millisiemens in an organic electrochemical transistor. Below this threshold, systems resemble nucleated behavior, whereas above it, superior semiconducting properties emerge, but phase transition capability is lost. These materials enable reusable through-hair neural interfaces to maintain low skin contact impedance of 1.6 kohm·cm2 across different hair types for 3 days, facilitating stable event-related desynchronization detection during mechanical and electrical haptic sensation for personalized haptics.

Original languageEnglish (US)
Pages (from-to)eaee0777
JournalScience Advances
Volume12
Issue number20
DOIs
StatePublished - May 15 2026

All Science Journal Classification (ASJC) codes

  • General

Fingerprint

Dive into the research topics of 'Controlling thermoreversibility and hole conductivity in thermoresponsive ionic biogels using phase morphology for neurohaptics'. Together they form a unique fingerprint.

Cite this