Biodegradability of bio‐based and synthetic hydrogels as sustainable soil amendments: A review
暂无分享,去创建一个
[1] O. Wendroth,et al. The Impacts of Bio-Based and Synthetic Hydrogels on Soil Hydraulic Properties: A Review , 2022, Polymers.
[2] R. F. Beims,et al. Performance of a novel, eco‐friendly, cellulose‐based superabsorbent polymer ( Cellulo‐SAP ): Absorbency, stability, reusability, and biodegradability , 2022, The Canadian Journal of Chemical Engineering.
[3] L. Brassart,et al. Constitutive modelling of hydrolytic degradation in hydrogels , 2022, Journal of the Mechanics and Physics of Solids.
[4] P. Michaud,et al. Structures, Properties and Applications of Alginates , 2022, Marine drugs.
[5] V. Sedlařík,et al. Eco-friendly whey/polysaccharide-based hydrogel with poly(lactic acid) for improvement of agricultural soil quality and plant growth. , 2022, International journal of biological macromolecules.
[6] B. Chandravanshi,et al. Development and validation of liquid chromatography method for simultaneous determination of multiclass seven antibiotic residues in chicken tissues , 2022, BMC Chemistry.
[7] F. Picchioni,et al. Superabsorbent Polymers: from long-established, microplastics generating systems, to sustainable, biodegradable and future proof alternatives , 2021, Progress in Polymer Science.
[8] M. Maggini,et al. Biodegradable Hydrogels: Evaluation of Degradation as a Function of Synthesis Parameters and Environmental Conditions , 2021, Soil Systems.
[9] G. Garnier,et al. Carboxylated Nanocellulose Superabsorbent: Biodegradation and Soil Water Retention Properties , 2021, Journal of Applied Polymer Science.
[10] P. Basser,et al. Ion-Induced Volume Transition in Gels and Its Role in Biology , 2021, Gels.
[11] M. Kreutzbruck,et al. Review on the Biological Degradation of Polymers in Various Environments , 2020, Materials.
[12] U. Manna,et al. Quantifying the interactive effect of water absorbing polymer (WAP)-soil texture on plant available water content and irrigation frequency , 2020 .
[13] Adarsh Kumar,et al. Ligninolytic enzymes and its mechanisms for degradation of lignocellulosic waste in environment , 2020, Heliyon.
[14] N. Karak,et al. Biodegradable superabsorbent hydrogel for water holding in soil and controlled‐release fertilizer , 2020, Journal of Applied Polymer Science.
[15] P. Peng,et al. Hydrogel synthesis based on lignin/sodium alginate and application in agriculture. , 2019, International journal of biological macromolecules.
[16] J. Whalen,et al. Development and Characterization of Lignin‐Based Hydrogel for Use in Agricultural Soils: Preliminary Evidence , 2019, CLEAN – Soil, Air, Water.
[17] A. Lugao,et al. PVGA/Alginate-AgNPs hydrogel as absorbent biomaterial and its soil biodegradation behavior , 2019, Polymer Bulletin.
[18] Yong-cheng Hu,et al. Demineralized Bone Matrix Carriers and their Clinical Applications: An Overview , 2019, Orthopaedic surgery.
[19] Jie Lu,et al. Lignin-based hydrogels: A review of preparation, properties, and application. , 2019, International journal of biological macromolecules.
[20] S. Van Vlierberghe,et al. Superabsorbent polymers: A review on the characteristics and applications of synthetic, polysaccharide-based, semi-synthetic and ‘smart’ derivatives , 2019, European Polymer Journal.
[21] V. Siracusa. Microbial Degradation of Synthetic Biopolymers Waste , 2019, Polymers.
[22] A. Nyyssölä,et al. Microbial degradation of polyacrylamide and the deamination product polyacrylate , 2019, International Biodeterioration & Biodegradation.
[23] Warunee Tanan,et al. Novel biodegradable hydrogel based on natural polymers: Synthesis, characterization, swelling/reswelling and biodegradability , 2019, European Polymer Journal.
[24] S. Pietr,et al. Colonization and biodegradation of the cross-linked potassium polyacrylate component of water absorbing geocomposite by soil microorganisms , 2019, Applied Soil Ecology.
[25] Jian-min Zhou,et al. Degradation of Polyacrylate in the Outdoor Agricultural Soil Measured by FTIR-PAS and LIBS , 2018, Polymers.
[26] A. Zydney,et al. Polyacrylamide degradation and its implications in environmental systems , 2018, npj Clean Water.
[27] A. Schintlmeister,et al. Biodegradation of synthetic polymers in soils: Tracking carbon into CO2 and microbial biomass , 2018, Science Advances.
[28] S. Saengsuwan,et al. Synthesis and properties of biodegradable hydrogels based on cross-linked natural rubber and cassava starch , 2017 .
[29] Z. Majeed,et al. Lignin Macromolecule's Implication in Slowing the Biodegradability of Urea Crosslinked Starch Films Applied As Slow Release Fertilizer† , 2017 .
[30] Hajime Nakajima,et al. The Recent Developments in Biobased Polymers toward General and Engineering Applications: Polymers that Are Upgraded from Biodegradable Polymers, Analogous to Petroleum-Derived Polymers, and Newly Developed , 2017, Polymers.
[31] S. Van Vlierberghe,et al. Crack Mitigation in Concrete: Superabsorbent Polymers as Key to Success? , 2017, Materials.
[32] Thomas F. Garrison,et al. Bio-Based Polymers with Potential for Biodegradability , 2016, Polymers.
[33] S. Srebnik,et al. Structural Characterization of Sodium Alginate and Calcium Alginate. , 2016, Biomacromolecules.
[34] Z. Majeed,et al. Lignin reinforcement of urea-crosslinked starch films for reduction of starch biodegradability to improve slow nitrogen release properties under natural aerobic soil condition , 2016 .
[35] S. Pietr,et al. Biodegradation of the cross-linked copolymer of acrylamide and potassium acrylate by soil bacteria , 2016, Environmental Science and Pollution Research.
[36] Zulkifli Ahmad,et al. Classification, processing and application of hydrogels: A review. , 2015, Materials science & engineering. C, Materials for biological applications.
[37] A. F. Rubira,et al. Superabsorbent hydrogels based on polysaccharides for application in agriculture as soil conditioner and nutrient carrier: A review , 2015 .
[38] U. Hamer,et al. Biodegradation of Hydrogels from Oxyethylated Lignins in Model Soils , 2015 .
[39] S. Riyajan,et al. Preparation and properties of a hydrogel of maleated poly(vinyl alcohol) (PVAM) grafted with cassava starch. , 2015, Carbohydrate polymers.
[40] Z. Majeed,et al. A comprehensive review on biodegradable polymers and their blends used in controlled-release fertilizer processes , 2015 .
[41] Enas M. Ahmed,et al. Hydrogel: Preparation, characterization, and applications: A review , 2013, Journal of advanced research.
[42] L. Breuer,et al. Relevance of nonfunctional linear polyacrylic acid for the biodegradation of superabsorbent polymer in soils , 2015, Environmental Science and Pollution Research.
[43] S. Kalia,et al. A study of the biodegradation behaviour of poly(methacrylic acid/aniline)-grafted gum ghatti by a soil burial method , 2014 .
[44] L. Breuer,et al. Biodegradability of a polyacrylate superabsorbent in agricultural soil , 2013, Environmental Science and Pollution Research.
[45] S. Chee,et al. Thermal and microbial degradation of alginate-based superabsorbent polymer , 2011 .
[46] Yujie Feng,et al. Biodegradation of polyacrylamide by bacteria isolated from activated sludge and oil-contaminated soil. , 2010, Journal of hazardous materials.
[47] Alessandro Sannino,et al. Biodegradable Cellulose-based Hydrogels: Design and Applications , 2009, Materials.
[48] Jianjun Xie,et al. Swelling properties of superabsorbent poly(acrylic acid‐co‐acrylamide) with different crosslinkers , 2009 .
[49] Christian Belloy,et al. Polymer biodegradation: mechanisms and estimation techniques. , 2008, Chemosphere.
[50] Zhan‐qian Song,et al. Characterization and biodegradability of amphoteric superabsorbent polymers , 2008 .
[51] R. Banerjee,et al. Comparative studies on crosslinked and uncrosslinked natural rubber biodegradation by Pseudomonas sp. , 2006, Bioresource technology.
[52] P. Sahoo,et al. Synthesis and biodegradability of starch-g-ethyl methacrylate/sodium acrylate/sodium silicate superabsorbing composite , 2006 .
[53] M. Guo,et al. Factors on the preparation of carboxymethylcellulose hydrogel and its degradation behavior in soil , 2004 .
[54] Máximo Barón,et al. Definitions of terms relating to reactions of polymers and to functional polymeric materials (IUPAC Recommendations 2003) , 2004 .
[55] G. Qiao,et al. Some aspects of the properties and degradation of polyacrylamides. , 2002, Chemical reviews.
[56] N. Billingham. Handbook of Polymer Degradation , 2001 .
[57] Michael D. Cameron,et al. Biodegradation of superabsorbent polymers in soil , 2000, Environmental science and pollution research international.
[58] M. Cameron,et al. Cellobiose dehydrogenase-dependent biodegradation of polyacrylate polymers by Phanerochaete chrysosporium , 2000, Environmental science and pollution research international.
[59] R. Wool,et al. Degradation of polyethylene–starch blends in soil , 1991 .
[60] R. Farrell,et al. Enzymatic "combustion": the microbial degradation of lignin. , 1987, Annual review of microbiology.
[61] V. Bisaria,et al. Biodegradation of cellulosic materials: Substrates, microorganisms, enzymes and products , 1981 .
[62] J. Martín,et al. Biodegradation and stabilization after 2 years of specific crop, lignin, and polysaccharide carbons , 1980 .