Page 29 - Read Online
P. 29

He et al. Soft Sci 2024;4:37  https://dx.doi.org/10.20517/ss.2024.32            Page 27 of 27

                    enhances bone regeneration. ACS Appl Mater Interfaces 2021;13:59051-66.  DOI  PubMed
               112.      Kaur N, Mimansa, Sharma P, Praveen Kumar P, Neelakandan PP, Shanavas A. Plasmonically active supramolecular polymer–metal–
                    organic framework hydrogel nanocomposite for localized chemo-photothermal therapy. ACS Appl Polym Mater 2023;5:542-51.  DOI
               113.      Li J, Fu Z, Liu Y. Encapsulation of liquid metal nanoparticles inside metal–organic frameworks for hydrogel-integrated dual
                    functional biotherapy. Chem Eng J 2023;457:141302.  DOI
               114.      Zhang D, Meng Y, Song Y, Cui P, Hu Z, Zheng X. Precision therapy through breaking the intracellular redox balance with an MOF-
                    based hydrogel intelligent nanobot for enhancing ferroptosis and activating immunotherapy. Nanoscale 2022;14:8441-53.  DOI
                    PubMed
               115.      Shao G, Wang S, Zhao H, et al. Tunable arrangement of hydrogel and cyclodextrin-based metal organic frameworks suitable for drug
                    encapsulation and release. Carbohydr Polym 2022;278:118915.  DOI
               116.      Yang Z, Fu X, Zhou L, et al. Chem-inspired synthesis of injectable metal–organic hydrogels for programmable drug carriers,
                    hemostasis and synergistic cancer treatment. Chem Eng J 2021;423:130202.  DOI
               117.      Liu W, Erol O, Gracias DH. 3D printing of an in situ grown MOF hydrogel with tunable mechanical properties. ACS Appl Mater
                    Interfaces 2020;12:33267-75.  DOI  PubMed
               118.      Zhang J, He X, Kong YR, et al. Efficiently boosting moisture retention capacity of porous superprotonic conducting MOF-802 at
                    ambient humidity via forming a hydrogel composite strategy. ACS Appl Mater Interfaces 2021;13:37231-8.  DOI  PubMed
               119.      Cui B, Guo C, Zhang Z, Fu G. Construction of a novel self-bleaching photochromic hydrogel embraced within the Zn-MOF@WO   3
                    junction for assembling UV-irradiated smart rewritable device. Chem Eng J 2023;455:140822.  DOI
               120.      Nie J, Xie H, Zhang M, Liang J, Nie S, Han W. Effective and facile fabrication of MOFs/cellulose composite paper for air hazards
                    removal by virtue of in situ synthesis of MOFs/chitosan hydrogel. Carbohydr Polym 2020;250:116955.  DOI
               121.      Wang  W,  Zheng  S,  Hong  Y,  Xu  X,  Feng  X,  Song  H.  Hydrogel–metal–organic-framework  nanoparticle  composites  for
                    immobilization of active biomacromolecules. ACS Appl Nano Mater 2022;5:2222-30.  DOI
               122.      Tang L, Gong L, Xu Y, et al. Mechanically strong metal–organic framework nanoparticle-based double network hydrogels for
                    fluorescence imaging. ACS Appl Nano Mater 2022;5:1348-55.  DOI
               123.      Kong Y, Zhang R, Zhang J, et al. Microwave-assisted rapid synthesis of nanoscale MOF-303 for hydrogel composites with superior
                    proton conduction at ambient-humidity conditions. ACS Appl Energy Mater 2021;4:14681-8.  DOI
               124.      Lin X, Guo L, Shaghaleh H, Hamoud YA, Xu X, Liu H. A TEMPO-oxidized cellulose nanofibers/MOFs hydrogel with temperature
                    and pH responsiveness for fertilizers slow-release. Int J Biol Macromol 2021;191:483-91.  DOI  PubMed
               125.      Xu J, Wu C, Qiu Y, Tang X, Zeng D. Novel elastically stretchable metal-organic framework laden hydrogel with pearl-net
                    microstructure and freezing resistance through post-synthetic polymerization. Macromol Rapid Commun 2020;41:e1900573.  DOI
                    PubMed
               126.      de Lima HHC, da Silva CTP, Kupfer VL, et al. Synthesis of resilient hybrid hydrogels using UiO-66 MOFs and alginate
                    (hydroMOFs) and their effect on mechanical and matter transport properties. Carbohydr Polym 2021;251:116977.  DOI
               127.      Jia P, He X, Yang J, et al. Dual–emission MOF–based ratiometric platform and sensory hydrogel for visible detection of biogenic
                    amines in food spoilage. Sensor Actuat B Chem 2023;374:132803.  DOI
               128.      Kim B, Na J, Lim H, Kim Y, Kim J, Kim E. Robust high thermoelectric harvesting under a self-humidifying bilayer of metal organic
                    framework and hydrogel layer. Adv Funct Mater 2019;29:1807549.  DOI
               129.      Khan M, Rahman TU, Shah LA, Akil HM, Fu J, Yoo HM. Multi-role conductive hydrogels for flexible transducers regulated by
                    MOFs for monitoring human activities and electronic skin functions. J Mater Chem B 2024;12:6190-202.  DOI
               130.      Xiao J, Zhou Z, Zhong G, Xu T, Zhang X. Self-sterilizing microneedle sensing patches for machine learning-enabled wound pH
                    visual monitoring. Adv Funct Mater 2024;34:2315067.  DOI
               131.      Wang HS, Wang YH, Ding Y. Development of biological metal-organic frameworks designed for biomedical applications: from bio-
                    sensing/bio-imaging to disease treatment. Nanoscale Adv 2020;2:3788-97.  DOI  PubMed  PMC
               132.      Ma Q, Zhang T, Wang B. Shaping of metal-organic frameworks, a critical step toward industrial applications. Matter 2022;5:1070-
                    91.  DOI
               133.      Ying B, Huang H, Su Y, Howarth JG, Gu Z, Nan K. Theranostic gastrointestinal residence systems. Device 2023;1:100053.  DOI
               134.      Fan X, Chen Z, Sun H, Zeng S, Liu R, Tian Y. Polyelectrolyte-based conductive hydrogels: from theory to applications. Soft Sci
                    2022;2:10.  DOI
               135.      Sun W, Zhao X, Webb E, Xu G, Zhang W, Wang Y. Advances in metal–organic framework-based hydrogel materials: preparation,
                    properties and applications. J Mater Chem A 2023;11:2092-127.  DOI
   24   25   26   27   28   29   30   31   32   33   34