Antibacterial smart absorbent pad with Janus structure for meat preservation
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Haishun Du | Liping Zhou | Xiangyu Jiao | Changtao Wang | Xiaochun Bian | Yongqiang Wen | Jiaxuan Xie
[1] Dongfang Wang,et al. Fabrication of Breathable Janus Membranes with Gradient Unidirectional Permeability by Micro-imprinting , 2022, Separation and Purification Technology.
[2] Xinglian Xu,et al. Antibacterial aerogels with nano‑silver reduced in situ by carboxymethyl cellulose for fresh meat preservation. , 2022, International journal of biological macromolecules.
[3] J Zhang,et al. Smart Polycationic Hydrogel Dressing for Dynamic Wound Healing. , 2022, Small.
[4] Yue Zhang,et al. A Water-absorbent Mat Incorporating β-cyclodextrin/eugenol Inclusion Complex for Preservation of Cold Fresh Mutton , 2022, Food Biophysics.
[5] B. Kandasubramanian,et al. Self-Healing Nanofibers for Engineering Applications , 2022, Industrial & Engineering Chemistry Research.
[6] D. Ren,et al. Development of pH-responsive absorbent pad based on polyvinyl alcohol/agarose/anthocyanins for meat packaging and freshness indication. , 2022, International journal of biological macromolecules.
[7] Ling Yu,et al. Biomimetic Janus membrane with unidirectional water transport ability for rapid oil/water separation , 2021 .
[8] Xinglian Xu,et al. Advances in understanding the predominance, phenotypes, and mechanisms of bacteria related to meat spoilage , 2021, Trends in Food Science & Technology.
[9] Y. Wen,et al. Electrospun pullulan/PVA nanofibers integrated with thymol-loaded porphyrin metal-organic framework for antibacterial food packaging. , 2021, Carbohydrate polymers.
[10] Yan Qin,et al. Nanofibrous composite aerogel with multi-bioactive and fluid gating characteristics for promoting diabetic wound healing. , 2021, Biomaterials.
[11] Jian Shen,et al. Poly(hexamethylene biguanide) (PHMB) as high-efficiency antibacterial coating for titanium substrates. , 2021, Journal of hazardous materials.
[12] Zhiguang Guo,et al. Substrate-free water film for liquid directional transportation , 2021 .
[13] B. Kandasubramanian,et al. Needleless electrospun phytochemicals encapsulated nanofibre based 3-ply biodegradable mask for combating COVID-19 pandemic , 2021, Chemical Engineering Journal.
[14] A. Urbanska,et al. Electrospinning for tissue engineering applications , 2020 .
[15] H. Almasi,et al. Immobilization of Echium amoenum anthocyanins into bacterial cellulose film: A novel colorimetric pH indicator for freshness/spoilage monitoring of shrimp , 2020 .
[16] S. F. Hosseini,et al. Electrospun essential oil-doped chitosan/poly(ε-caprolactone) hybrid nanofibrous mats for antimicrobial food biopackaging exploits. , 2019, Carbohydrate polymers.
[17] Wen Qin,et al. Effects of various antimicrobial polyvinyl alcohol/tea polyphenol composite films on the shelf life of packaged strawberries , 2019, LWT.
[18] Yunfei Xie,et al. Application of essential oil as a sustained release preparation in food packaging , 2019, Trends in Food Science & Technology.
[19] Chengtie Wu,et al. Grape Seed-Inspired Smart Hydrogel Scaffolds for Melanoma Therapy and Wound Healing. , 2019, ACS nano.
[20] E. Sangeetha,et al. Super water absorbing polymeric gel from chitosan, citric acid and urea: Synthesis and mechanism of water absorption. , 2018, Carbohydrate polymers.
[21] Shining Zhu,et al. Flexible and Salt Resistant Janus Absorbers by Electrospinning for Stable and Efficient Solar Desalination , 2018 .
[22] O. Kostko,et al. Guanidinium Group Remains Protonated in a Strongly Basic Arginine Solution. , 2017, Chemphyschem : a European journal of chemical physics and physical chemistry.
[23] G. R. Castro,et al. A simple green route to obtain poly(vinyl alcohol) electrospun mats with improved water stability for use as potential carriers of drugs. , 2016, Materials science & engineering. C, Materials for biological applications.
[24] B. Li,et al. Green and biodegradable composite films with novel antimicrobial performance based on cellulose. , 2016, Food chemistry.
[25] O. Dangles,et al. Stabilizing and Modulating Color by Copigmentation: Insights from Theory and Experiment. , 2016, Chemical reviews.
[26] Huining Xiao,et al. Antimicrobial Polymeric Materials with Quaternary Ammonium and Phosphonium Salts , 2015, International journal of molecular sciences.
[27] Yi Yan Yang,et al. Antimicrobial Polycarbonates: Investigating the Impact of Nitrogen-Containing Heterocycles as Quaternizing Agents , 2014 .
[28] C. Debiemme-Chouvy,et al. Antimicrobial N-halamine polymers and coatings: a review of their synthesis, characterization, and applications. , 2013, Biomacromolecules.
[29] Danilo Ercolini,et al. Spoilage microbiota associated to the storage of raw meat in different conditions. , 2012, International journal of food microbiology.
[30] X. Duan,et al. Antifungal activities of polyhexamethylene biguanide and polyhexamethylene guanide against the citrus sour rot pathogen Geotrichum citri-aurantii in vitro and in vivo , 2011 .
[31] G. Wegner,et al. Poly(alkylene biguanides) as Proton Conductors for High‐Temperature PEMFCs , 2010, Advanced materials.
[32] K. Kuroda,et al. Structural determinants of antimicrobial activity and biocompatibility in membrane-disrupting methacrylamide random copolymers. , 2009, Biomacromolecules.
[33] P. Wender,et al. The design of guanidinium-rich transporters and their internalization mechanisms. , 2008, Advanced drug delivery reviews.
[34] Michael R. Yeaman,et al. Mechanisms of Antimicrobial Peptide Action and Resistance , 2003, Pharmacological Reviews.
[35] D. G. Lee,et al. Antifungal activity of the cationic antimicrobial polymer-polyhexamethylene guanidine hydrochloride and its mode of action. , 2017, Fungal biology.
[36] H. Korkeala,et al. Determination of pH in meat. , 1986, Meat science.