Layer Engineered MXene Empowered Wearable Pressure Sensors for Non‐Invasive Vital Human–Machine Interfacing Healthcare Monitoring

Author:

Mohapatra Debananda1ORCID,Byun Jeong Eun2,Ansari Mohd Zahid3,Kim Haekyoung3,Cheon Taehoon4,Jang Jongmoon5,Cho Young‐Rae2,Lee Jung Woo2,Kim Soo‐Hyun1ORCID

Affiliation:

1. Graduate School of Semiconductor Materials and Devices Engineering Ulsan National Institute of Science and Technology (UNIST) Ulju‐gun Ulsan 44919 Republic of Korea

2. Department of Materials Science and Engineering Pusan National University Geumjeong‐gu Busan 46241 Republic of Korea

3. School of Materials Science and Engineering Yeungnam University Gyeongsan Gyeongbuk 38541 Republic of Korea

4. Center for Core Research Facilities Daegu Gyeongbuk Institute of Science & Technology (DGIST) Sang‐ri Hyeonpung‐myeon Dalseong‐gun Daegu 711‐873 Republic of Korea

5. Department of Functional Ceramics Korea Institute of Materials Science (KIMS) Changwon 51508 Republic of Korea

Abstract

AbstractPressure sensors with high flexibility and sensitivity face significant challenges in meeting the delicate balance and synergy among suitable active sensing electrode materials, substrates, and their device geometry design. In this contribution, layer‐engineered delaminated Ti‐MXene (DL‐Ti3C2Tx) is introduced, which has relatively wider interlayer spacing through intercalated large organic molecules and accordion‐like open internal microstructure than the narrower pristine Ti3C2Tx MXene (Ti‐MXene), graphene/carbon nanotube's interlayer spacing suitably fulfill the high sensitivity and flexibility requirement through accessible electronic pathways under the external pressure. Notably, a milder in‐situ ambient condition etching is performed to eliminate the associated safety risks for a flexible personal healthcare monitoring pressure sensor. DL‐Ti3C2Tx MXene‐empowered, flexible pressure sensor demonstrates a broad range of sensitivities up to a very high‐pressure of 20.8 kPa at a sensitivity of 242.3 kPa−1 with a fast response and recovery time (<300 ms). A twofold increase in pressure sensitivity performance of DL‐Ti3C2Tx MXene than that of Ti‐MXene, graphene can be attributed to the engineered wider interlayer distance among the delaminated DL‐Ti3C2Tx MXene layers causing a facile interlayer atomic movements, contacts, and reversible compressibility. The current economical, scalable DL‐Ti3C2Tx MXene flexible pressure sensor can provide future safe personal healthcare artificial intelligence with real‐time tracking ability.

Funder

Korea Semiconductor Research Consortium

Ministry of Trade, Industry and Energy

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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