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  • Royal Society of Chemistry (RSC)  (2)
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  • Royal Society of Chemistry (RSC)  (2)
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  • 1
    Online Resource
    Online Resource
    Royal Society of Chemistry (RSC) ; 2023
    In:  Chemical Science Vol. 14, No. 12 ( 2023), p. 3091-3116
    In: Chemical Science, Royal Society of Chemistry (RSC), Vol. 14, No. 12 ( 2023), p. 3091-3116
    Abstract: Conductive hydrogels (CHs) combine the biomimetic properties of hydrogels with the physiological and electrochemical properties of conductive materials, and have attracted extensive attention in the past few years. In addition, CHs have high conductivity and electrochemical redox properties and can be used to detect electrical signals generated in biological systems and conduct electrical stimulation to regulate the activities and functions of cells including cell migration, cell proliferation, and cell differentiation. These properties give CHs unique advantages in tissue repair. However, the current review of CHs is mostly focused on their applications as biosensors. Therefore, this article reviewed the new progress of CHs in tissue repair including nerve tissue regeneration, muscle tissue regeneration, skin tissue regeneration and bone tissue regeneration in the past five years. We first introduced the design and synthesis of different types of CHs such as carbon-based CHs, conductive polymer-based CHs, metal-based CHs, ionic CHs, and composite CHs, and the types and mechanisms of tissue repair promoted by CHs including anti-bacterial, antioxidant and anti-inflammatory properties, stimulus response and intelligent delivery, real-time monitoring, and promoted cell proliferation and tissue repair related pathway activation, which provides a useful reference for further preparation of bio-safer and more efficient CHs used in tissue regeneration.
    Type of Medium: Online Resource
    ISSN: 2041-6520 , 2041-6539
    Language: English
    Publisher: Royal Society of Chemistry (RSC)
    Publication Date: 2023
    detail.hit.zdb_id: 2559110-1
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  • 2
    In: Journal of Materials Chemistry A, Royal Society of Chemistry (RSC), Vol. 10, No. 30 ( 2022), p. 16037-16045
    Abstract: Designing highly active multifunctional catalysts to meet the demands for fuel cells, metal–air batteries, and water-splitting devices is a top priority. Here, an efficient and novel trifunctional electrocatalyst (Fe 2 P/Co@NPC) with Fe 2 P and Co nanoparticles embedded in porous carbon has been developed by facile one-pot pyrolysis. The synergistic effect of Fe 2 P and Co nanoparticles furnishes Fe 2 P/Co@NPC with excellent catalytic performance for oxygen reduction reaction (ORR, E 1/2 = 0.876 V), oxygen evolution reaction (OER, η 10 = 331 mV), and hydrogen evolution reaction (HER, η 10 = 235 mV). Significantly, using Fe 2 P/Co@NPC catalyst as the cathode, the assembled anion exchange membrane fuel cell delivers a peak power density of 1.25 W cm −2 . Moreover, the assembled rechargeable Zn–air battery, using Fe 2 P/Co@NPC as a bifunctional oxygen catalyst, exhibits a maximum power density of 233.56 mW cm −2 and impressive cycle performance. Using Fe 2 P/Co@NPC as a bifunctional HER and OER catalyst, the overall water electrolyzer also achieves a low voltage of 1.73 V to deliver 10 mA cm −2 . This work represents a protocol for the preparation of high efficient trifunctional electrocatalysts using cheaper heteroatom-containing metal–organic small molecules as a precursor for electrochemical energy devices.
    Type of Medium: Online Resource
    ISSN: 2050-7488 , 2050-7496
    Language: English
    Publisher: Royal Society of Chemistry (RSC)
    Publication Date: 2022
    detail.hit.zdb_id: 2702232-8
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