Creep-free polyelectrolyte elastomer for drift-free iontronic sensing (2024)

  • Luh, J., Fisher, W. & Paul, R. Joint torque control by a direct feedback for industrial robots. IEEE Trans. Autom. Control 28, 153–161 (1983).

    Google Scholar

  • Cheng, G. et al. A comprehensive realization of robot skin: sensors, sensing, control, and applications. Proc. IEEE 107, 2034–2051 (2019).

    Google Scholar

  • Dahiya, R. E-Skin: from humanoids to humans (point of view). Proc. IEEE 107, 247–252 (2019).

    Google Scholar

  • Cho, A., Kim, J., Lee, S. & Kee, C. Wind estimation and airspeed calibration using a UAV with a single-antenna GPS receiver and pitot tube. IEEE Trans. Aerosp. Electron. Syst. 47, 109–117 (2011).

    Google Scholar

  • Xu, Z. et al. Digital mapping of surface turbulence status and aerodynamic stall on wings of a flying aircraft. Nat. Commun. 14, 2792 (2023).

    CAS PubMed PubMed Central Google Scholar

  • Yang, S. et al. A survey of intelligent tires for tire-road interaction recognition toward autonomous vehicles. IEEE Trans. Intell. Veh. 7, 520–532 (2022).

    Google Scholar

  • Liu, Y. et al. Electronic skin as wireless human–machine interfaces for robotic VR. Sci. Adv. 8, eabl6700 (2022).

    PubMed PubMed Central Google Scholar

  • Zhu, M. L. et al. Haptic-feedback smart glove as a creative human–machine interface (HMI) for virtual/augmented reality applications. Sci. Adv. 6, eaaz8693 (2020).

    CAS PubMed PubMed Central Google Scholar

  • Sun, Z., Zhu, M., Shan, X. & Lee, C. Augmented tactile-perception and haptic-feedback rings as human–machine interfaces aiming for immersive interactions. Nat. Commun. 13, 5224 (2022).

    CAS PubMed PubMed Central Google Scholar

  • Chortos, A., Liu, J. & Bao, Z. Pursuing prosthetic electronic skin. Nat. Mater. 15, 937–950 (2016).

    CAS PubMed Google Scholar

  • Kang, S.-K. et al. Bioresorbable silicon electronic sensors for the brain. Nature 530, 71–76 (2016).

    CAS PubMed Google Scholar

  • Wang, L. et al. A review of wearable sensor systems to monitor plantar loading in the assessment of diabetic foot ulcers. IEEE Trans. Biomed. Eng. 67, 1989–2004 (2020).

    PubMed Google Scholar

  • Su, Q. et al. A stretchable and strain-unperturbed pressure sensor for motion interference-free tactile monitoring on skins. Sci. Adv. 7, eabi4563 (2021).

    PubMed PubMed Central Google Scholar

  • Lee, S. et al. Nanomesh pressure sensor for monitoring finger manipulation without sensory interference. Science 370, 966–970 (2020).

    CAS PubMed Google Scholar

  • Boutry, C. M. et al. A stretchable and biodegradable strain and pressure sensor for orthopaedic application. Nat. Electron. 1, 314–321 (2018).

    Google Scholar

  • Yang, C. & Suo, Z. Hydrogel ionotronics. Nat. Rev. Mater. 3, 125–142 (2018).

    Google Scholar

  • Chang, Y. et al. First decade of interfacial iontronic sensing: from droplet sensors to artificial skins. Adv. Mater. 33, 2003464 (2021).

    CAS Google Scholar

  • Lee, H. R., Kim, C. C. & Sun, J. Y. Stretchable ionics—a promising candidate for upcoming wearable devices. Adv. Mater. 30, 1704403 (2018).

    Google Scholar

  • Yuan, Y. et al. Microstructured polyelectrolyte elastomer-based ionotronic sensors with high sensitivities and excellent stability for artificial skins. Adv. Mater. https://doi.org/10.1002/adma.202310429 (2023).

  • Sun, T. L. et al. Physical hydrogels composed of polyampholytes demonstrate high toughness and viscoelasticity. Nat. Mater. 12, 932–937 (2013).

    CAS PubMed Google Scholar

  • Leocmach, M., Perge, C., Divoux, T. & Manneville, S. Creep and fracture of a protein gel under stress. Phys. Rev. Lett. 113, 038303 (2014).

    CAS PubMed Google Scholar

  • Rubinstein, M. & Colby, R. H. Polymer Physics (Oxford Univ., 2003).

    Google Scholar

  • Biot, M. A. General theory of three‐dimensional consolidation. J. Appl. Phys. 12, 155–164 (1941).

    Google Scholar

  • Zhu, J. & Liu, Q. The osmocapillary effect on a rough gel surface. J. Mech. Phys. Solids 170, 105124 (2023).

    Google Scholar

  • Karobi, S. N. et al. Creep behavior and delayed fracture of tough polyampholyte hydrogels by tensile test. Macromolecules 49, 5630–5636 (2016).

    CAS Google Scholar

  • Zhou, Y. et al. The stiffness-threshold conflict in polymer networks and a resolution. J. Appl. Mech. 87, 031002 (2020).

    CAS Google Scholar

  • Choi, J.-H., Xie, W., Gu, Y., Frisbie, C. D. & Lodge, T. P. Single ion conducting, polymerized ionic liquid triblock copolymer films: high capacitance electrolyte gates for n-type transistors. ACS Appl. Mater. Interfaces 7, 7294–7302 (2015).

    CAS PubMed Google Scholar

  • Kim, H. J., Chen, B., Suo, Z. & Hayward, R. C. Ionoelastomer junctions between polymer networks of fixed anions and cations. Science 367, 773–776 (2020).

    CAS PubMed Google Scholar

  • Fan, F. et al. Effect of molecular weight on the ion transport mechanism in polymerized ionic liquids. Macromolecules 49, 4557–4570 (2016).

    CAS Google Scholar

  • Yang, R. et al. Iontronic pressure sensor with high sensitivity over ultra-broad linear range enabled by laser-induced gradient micro-pyramids. Nat. Commun. 14, 2907 (2023).

    CAS PubMed PubMed Central Google Scholar

  • Bai, N. et al. Graded intrafillable architecture-based iontronic pressure sensor with ultra-broad-range high sensitivity. Nat. Commun. 11, 209 (2020).

    CAS PubMed PubMed Central Google Scholar

  • Zhang, Y. et al. Highly stable flexible pressure sensors with a quasi-hom*ogeneous composition and interlinked interfaces. Nat. Commun. 13, 1317 (2022).

    CAS PubMed PubMed Central Google Scholar

  • Mannsfeld, S. C. B. et al. Highly sensitive flexible pressure sensors with microstructured rubber dielectric layers. Nat. Mater. 9, 859–864 (2010).

    CAS PubMed Google Scholar

  • Yiming, B. et al. A mechanically robust and versatile liquid‐free ionic conductive elastomer. Adv. Mater. 33, 2006111 (2021).

    CAS Google Scholar

  • Nie, B., Li, R., Cao, J., Brandt, J. D. & Pan, T. Flexible transparent iontronic film for interfacial capacitive pressure sensing. Adv. Mater. 27, 6055–6062 (2015).

    CAS PubMed Google Scholar

  • Cui, X. et al. Flexible and breathable all-nanofiber iontronic pressure sensors with ultraviolet shielding and antibacterial performances for wearable electronics. Nano Energy 95, 107022 (2022).

    CAS Google Scholar

  • Yu, X. et al. Ultra-tough waterborne polyurethane-based graft-copolymerized piezoresistive composite designed for rehabilitation training monitoring pressure sensors. Small 19, 2303095 (2023).

    CAS Google Scholar

  • Bai, N. et al. Graded interlocks for iontronic pressure sensors with high sensitivity and high linearity over a broad range. ACS Nano. 16, 4338–4347 (2022).

    CAS PubMed Google Scholar

  • Li, P. et al. Skin-inspired large area iontronic pressure sensor with ultra-broad range and high sensitivity. Nano Energy 101, 107571 (2022).

    CAS Google Scholar

  • Shi, J. et al. Embedment of sensing elements for robust, highly sensitive, and cross-talk–free iontronic skins for robotics applications. Sci. Adv. 9, eadf8831 (2023).

    CAS PubMed PubMed Central Google Scholar

  • Terabe, H. et al. in Proc. International Solid State Sensors and Actuators Conference (Transducers’ 97) Vol. 2 1481–1484 (IEEE, 1997).

  • Lu, P. et al. Iontronic pressure sensor with high sensitivity and linear response over a wide pressure range based on soft micropillared electrodes. Sci. Bull. 66, 1091–1100 (2021).

    Google Scholar

  • Chen, X. et al. Channel-crack-designed suspended sensing membrane as a fully flexible vibration sensor with high sensitivity and dynamic range. ACS Appl. Mater. Interfaces 13, 34637–34647 (2021).

    CAS PubMed Google Scholar

  • Ha, K.-H. et al. Highly sensitive capacitive pressure sensors over a wide pressure range enabled by the hybrid responses of a highly porous nanocomposite. Adv. Mater. 33, 2103320 (2021).

    CAS Google Scholar

  • Docherty, K. M. & Kulpa, C. F. Jr Toxicity and antimicrobial activity of imidazolium and pyridinium ionic liquids. Green. Chem. 7, 185–189 (2005).

    CAS Google Scholar

  • Rivlin, R. & Thomas, A. G. Rupture of rubber. I. Characteristic energy for tearing. J. Polym. Sci. 10, 291–318 (1953).

    CAS Google Scholar

  • Creep-free polyelectrolyte elastomer for drift-free iontronic sensing (2024)

    References

    Top Articles
    Overton Funeral Home | Indianola, Iowa
    Allegheny General Hospital My Chart
    一亩三分地 录取
    Hk Jockey Club Result
    Ssm Health Workday App
    Wordscapes Level 5130
    How Much Is Vivica Fox Worth
    Cherry Downloadcenter
    Opsahl Kostel Funeral Home & Crematory Yankton
    Tmobile Ipad 10Th Gen
    Premier Double Up For A Buck
    Does Teddy Swims Have A Wife? Exploring The Life Of The Rising Star
    Zenuwbeknelling in de voorvoet (Mortons neuroom)
    Oppenheimer Showtimes Near Cinemark Denton
    College Basketball Predictions & Picks Today 🏀 [Incl. March Madness]
    Pip Calculator | Myfxbook
    Craigslist Free En Dallas Tx
    Cheap Motorcycles For Sale Under 1000 Craigslist Near Me
    Humongousbazonkers
    BitLife: How to Become a Supermodel
    Sodexo Northern Portal
    Phumikhmer 2022
    Mylaheychart Login
    Walgreens Shopper Says Staff “Threatened” And “Stalked” Her After She Violated The “Dress Code”
    Hannah Palmer Listal
    Palindromic Sony Console For Short Crossword Clue 6 Letters: Composer Of
    Duen Boobs
    Christian Horner: Red Bull team principal to remain in role after investigation into alleged inappropriate behaviour
    Roundpoint Mortgage Mortgagee Clause
    Pokerev Telegram
    Oasis Buds Slime Rancher
    Winsipedia
    Distance To Indianapolis
    Hibbett, Inc. Stock (HIBB) - Quote Nasdaq- MarketScreener
    Netronline Historic Aerials
    Junees Cedarhurst
    Terrier Hockey Blog
    Texas State Final Grades
    Cashtapp Atm Near Me
    Mastering the basics: A comprehensive guide to cybersecurity 101 for the digital age
    Connie Mason - Book Series In Order
    Ces 2023 Badge Pickup
    Milwaukee Zoo Ebt Discount
    Research Tome Neltharus
    11526 Lake Ave Cleveland Oh 44102
    Obtaining __________ Is A Major And Critical Closure Activity.
    Centurylink Outage Map Mesa Az
    Lhhouston Photos
    Joann Stores Near Me
    Mcknet Workday
    Mecklenburg Warrant Search
    Latest Posts
    Article information

    Author: Lilliana Bartoletti

    Last Updated:

    Views: 5851

    Rating: 4.2 / 5 (73 voted)

    Reviews: 88% of readers found this page helpful

    Author information

    Name: Lilliana Bartoletti

    Birthday: 1999-11-18

    Address: 58866 Tricia Spurs, North Melvinberg, HI 91346-3774

    Phone: +50616620367928

    Job: Real-Estate Liaison

    Hobby: Graffiti, Astronomy, Handball, Magic, Origami, Fashion, Foreign language learning

    Introduction: My name is Lilliana Bartoletti, I am a adventurous, pleasant, shiny, beautiful, handsome, zealous, tasty person who loves writing and wants to share my knowledge and understanding with you.