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Molecular Dynamics Inc mpc 10 forms multiple robust hydrogen bonds
Wearable and epidermal electrode systems. a) Chemical structure of P(BA‐co‐MAA) ionogel and distribution of hydrogen bonding strengths. As the frequency decreases, physical interactions progressively dissociate, resulting in simultaneous interchain breakup and enhanced entanglement that serve as topological crosslinks. Reproduced with permission. [ <xref ref-type= 143 ] Copyright 2024, Springer Nature under CC BY 4.0. license http://creativecommons.org/licenses/by/4.0/ . b) On‐skin paintable biogel for EEG recording on a hairy scalp. Biogel is painted on the scalp and removed with water, leaving the skin clean. Reproduced with permission. [ 307 ] Copyright 2022, The American Association for the Advancement of Science. c) In situ rapid gelation process of the biogel and formation mechanism of a conductive network for sEMG signal monitoring during vigorous motion. Reproduced with permission. [ 275 ] Copyright 2025, Springer Nature. d) Molecular dynamics (MD) simulation showing that the MPC 10 oligomer forms multiple hydrogen bonds with water molecules. ECG signals recorded using the anti‐dehydration hydrogel (P(AAm‐co‐MPC)) and conventional PAAm hydrogel after 24 h. Reproduced with permission. [ 119 ] Copyright 2023, Wiley‐VCH. " width="250" height="auto" />
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1) Product Images from "Ionic–Bionic Interfaces: Advancing Iontronic Strategies for Bioelectronic Sensing and Therapy"

Article Title: Ionic–Bionic Interfaces: Advancing Iontronic Strategies for Bioelectronic Sensing and Therapy

Journal: Advanced Science

doi: 10.1002/advs.202513985

Wearable and epidermal electrode systems. a) Chemical structure of P(BA‐co‐MAA) ionogel and distribution of hydrogen bonding strengths. As the frequency decreases, physical interactions progressively dissociate, resulting in simultaneous interchain breakup and enhanced entanglement that serve as topological crosslinks. Reproduced with permission. [ <xref ref-type= 143 ] Copyright 2024, Springer Nature under CC BY 4.0. license http://creativecommons.org/licenses/by/4.0/ . b) On‐skin paintable biogel for EEG recording on a hairy scalp. Biogel is painted on the scalp and removed with water, leaving the skin clean. Reproduced with permission. [ 307 ] Copyright 2022, The American Association for the Advancement of Science. c) In situ rapid gelation process of the biogel and formation mechanism of a conductive network for sEMG signal monitoring during vigorous motion. Reproduced with permission. [ 275 ] Copyright 2025, Springer Nature. d) Molecular dynamics (MD) simulation showing that the MPC 10 oligomer forms multiple hydrogen bonds with water molecules. ECG signals recorded using the anti‐dehydration hydrogel (P(AAm‐co‐MPC)) and conventional PAAm hydrogel after 24 h. Reproduced with permission. [ 119 ] Copyright 2023, Wiley‐VCH. " title="... d) Molecular dynamics (MD) simulation showing that the MPC 10 oligomer forms multiple hydrogen bonds with water ..." property="contentUrl" width="100%" height="100%"/>
Figure Legend Snippet: Wearable and epidermal electrode systems. a) Chemical structure of P(BA‐co‐MAA) ionogel and distribution of hydrogen bonding strengths. As the frequency decreases, physical interactions progressively dissociate, resulting in simultaneous interchain breakup and enhanced entanglement that serve as topological crosslinks. Reproduced with permission. [ 143 ] Copyright 2024, Springer Nature under CC BY 4.0. license http://creativecommons.org/licenses/by/4.0/ . b) On‐skin paintable biogel for EEG recording on a hairy scalp. Biogel is painted on the scalp and removed with water, leaving the skin clean. Reproduced with permission. [ 307 ] Copyright 2022, The American Association for the Advancement of Science. c) In situ rapid gelation process of the biogel and formation mechanism of a conductive network for sEMG signal monitoring during vigorous motion. Reproduced with permission. [ 275 ] Copyright 2025, Springer Nature. d) Molecular dynamics (MD) simulation showing that the MPC 10 oligomer forms multiple hydrogen bonds with water molecules. ECG signals recorded using the anti‐dehydration hydrogel (P(AAm‐co‐MPC)) and conventional PAAm hydrogel after 24 h. Reproduced with permission. [ 119 ] Copyright 2023, Wiley‐VCH.

Techniques Used: In Situ



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Wearable and epidermal electrode systems. a) Chemical structure of P(BA‐co‐MAA) ionogel and distribution of hydrogen bonding strengths. As the frequency decreases, physical interactions progressively dissociate, resulting in simultaneous interchain breakup and enhanced entanglement that serve as topological crosslinks. Reproduced with permission. [ <xref ref-type= 143 ] Copyright 2024, Springer Nature under CC BY 4.0. license http://creativecommons.org/licenses/by/4.0/ . b) On‐skin paintable biogel for EEG recording on a hairy scalp. Biogel is painted on the scalp and removed with water, leaving the skin clean. Reproduced with permission. [ 307 ] Copyright 2022, The American Association for the Advancement of Science. c) In situ rapid gelation process of the biogel and formation mechanism of a conductive network for sEMG signal monitoring during vigorous motion. Reproduced with permission. [ 275 ] Copyright 2025, Springer Nature. d) Molecular dynamics (MD) simulation showing that the MPC 10 oligomer forms multiple hydrogen bonds with water molecules. ECG signals recorded using the anti‐dehydration hydrogel (P(AAm‐co‐MPC)) and conventional PAAm hydrogel after 24 h. Reproduced with permission. [ 119 ] Copyright 2023, Wiley‐VCH. " width="100%" height="100%">

Journal: Advanced Science

Article Title: Ionic–Bionic Interfaces: Advancing Iontronic Strategies for Bioelectronic Sensing and Therapy

doi: 10.1002/advs.202513985

Figure Lengend Snippet: Wearable and epidermal electrode systems. a) Chemical structure of P(BA‐co‐MAA) ionogel and distribution of hydrogen bonding strengths. As the frequency decreases, physical interactions progressively dissociate, resulting in simultaneous interchain breakup and enhanced entanglement that serve as topological crosslinks. Reproduced with permission. [ 143 ] Copyright 2024, Springer Nature under CC BY 4.0. license http://creativecommons.org/licenses/by/4.0/ . b) On‐skin paintable biogel for EEG recording on a hairy scalp. Biogel is painted on the scalp and removed with water, leaving the skin clean. Reproduced with permission. [ 307 ] Copyright 2022, The American Association for the Advancement of Science. c) In situ rapid gelation process of the biogel and formation mechanism of a conductive network for sEMG signal monitoring during vigorous motion. Reproduced with permission. [ 275 ] Copyright 2025, Springer Nature. d) Molecular dynamics (MD) simulation showing that the MPC 10 oligomer forms multiple hydrogen bonds with water molecules. ECG signals recorded using the anti‐dehydration hydrogel (P(AAm‐co‐MPC)) and conventional PAAm hydrogel after 24 h. Reproduced with permission. [ 119 ] Copyright 2023, Wiley‐VCH.

Article Snippet: Molecular dynamics (MD) simulations revealed that MPC 10 forms multiple robust hydrogen bonds with surrounding water molecules, effectively suppressing water evaporation.

Techniques: In Situ