Biologically active ionic chitosan Schiff base nanocomposites: Synthesis, characterization and antimicrobial activity against Helicobacter pylori DOI
Ahmed M. Elgamal,

Eman AboBakr Ali,

Gamal R. Saad

et al.

International Journal of Biological Macromolecules, Journal Year: 2024, Volume and Issue: 282, P. 137321 - 137321

Published: Nov. 6, 2024

Language: Английский

Recent advances in chitosan-based materials; The synthesis, modifications and biomedical applications DOI
Yasir Iqbal, Iqbal Ahmed, Muhammad Irfan

et al.

Carbohydrate Polymers, Journal Year: 2023, Volume and Issue: 321, P. 121318 - 121318

Published: Aug. 23, 2023

Language: Английский

Citations

65

Advances in chitosan-based drug delivery systems: A comprehensive review for therapeutic applications DOI

Ammar Haider,

Shabana I. Khan, Dure Najaf Iqbal

et al.

European Polymer Journal, Journal Year: 2024, Volume and Issue: 210, P. 112983 - 112983

Published: March 26, 2024

Language: Английский

Citations

52

Chitosan and Its Derivatives: Preparation and Antibacterial Properties DOI Open Access
Anton R. Egorov, Anatoly A. Kirichuk, В. В. Рубаник

et al.

Materials, Journal Year: 2023, Volume and Issue: 16(18), P. 6076 - 6076

Published: Sept. 5, 2023

This comprehensive review illuminates the various methods of chitosan extraction, its antibacterial properties, and multifarious applications in diverse sectors. We delve into chemical, physical, biological, hybrid, green extraction techniques, each which presents unique advantages disadvantages. The choice method is dictated by multiple variables, including desired properties chitosan, resource availability, cost, environmental footprint. explore intricate relationship between chitosan’s activity such as cationic density, molecular weight, water solubility, pH. Furthermore, we spotlight burgeoning chitosan-based materials like films, nanoparticles, nonwoven materials, hydrogels across food, biomedical, agricultural concludes highlighting promising future underpinned technological advancements growing sustainability consciousness. However, critical challenges optimizing production for efficiency remain to be tackled.

Language: Английский

Citations

49

Advances in chitosan and chitosan derivatives for biomedical applications in tissue engineering: An updated review DOI
Alejandro Elizalde-Cárdenas, Rosa María Ribas‐Aparicio,

Aurora Rodríguez-Martínez

et al.

International Journal of Biological Macromolecules, Journal Year: 2024, Volume and Issue: 262, P. 129999 - 129999

Published: Feb. 7, 2024

Language: Английский

Citations

47

Advancements in coating technologies: Unveiling the potential of chitosan for the preservation of fruits and vegetables DOI
Roohallah Saberi Riseh,

Masoumeh Vatankhah,

Mohadeseh Hassanisaadi

et al.

International Journal of Biological Macromolecules, Journal Year: 2023, Volume and Issue: 254, P. 127677 - 127677

Published: Oct. 29, 2023

Language: Английский

Citations

44

Swift detection of heavy metals in water by encoded graphene–gold-metasurface sensor DOI
Jacob Wekalao, Osamah Alsalman,

Harshad Patel

et al.

Optical and Quantum Electronics, Journal Year: 2024, Volume and Issue: 56(7)

Published: June 18, 2024

Language: Английский

Citations

28

Sustainable hydrogen production: Solar-powered biomass conversion explored through (Photo)electrochemical advancements DOI Creative Commons
Rajender Boddula,

Yen‐Yi Lee,

Srinivaas Masimukku

et al.

Process Safety and Environmental Protection, Journal Year: 2024, Volume and Issue: 186, P. 1149 - 1168

Published: April 18, 2024

The incorporation of biomass waste into the process wealth creation through production hydrogen, a significant fuel source for renewable energy. Hydrogen from various sources, including crop remnants, algae, or waste, makes use easily accessible and materials, ensuring an uninterrupted supply without exhausting fossil reserves. Traditional techniques, like gasification pyrolysis, used hydrogen residues, present notable challenges such as high temperature pressure demands, substantial capital investment, risk releasing pollutants. Conversely, innovative approach photoelectrocatalytic green stands at vanguard clean energy advancements, holding great promise directly deriving with help sunlight, offering genuinely sustainable eco-friendly resolution. integration sunlight extra electrical stimulus biomass-to-hydrogen conversion, leveraging resources that are abundantly available continuously renewed, endorses truly nature this process. resultant fuel, created method, burns cleanly, emitting solely water vapor thus significantly curbing greenhouse gas emissions air pollution. This exhaustive review presents detailed evaluation utilization diverse raw covering carbohydrates, lignin, triglycerides (fats oils), proteins, terpenes production. It highlights transformative possibilities arising synergistic amalgamation electrocatalytic (EC) photocatalytic (PC) technologies, setting new pioneering era transition towards effective circular economy.

Language: Английский

Citations

23

Chitosan biopolymer and its composites: Processing, properties and applications- A comprehensive review DOI Creative Commons
Abinash Das, Sampad Ghosh, Nabakumar Pramanik

et al.

Hybrid Advances, Journal Year: 2024, Volume and Issue: 6, P. 100265 - 100265

Published: July 30, 2024

Agriculture throughout the world is scrambling to find solutions problems caused by conventional chemical fertilizers. Next-generation fertilizers made from biodegradable materials and powered renewable energy sources might be solution, resulting in a more efficient use of nutrients less damage environment. A growing body research over last decade has shown that chitosan nanoparticles may improve agricultural productivity delivering plants. Chitosan, shells crabs, coats insects, cell walls fungus, some algae, been known for long time have biological properties, especially anti-microbial properties. Chitosan demonstrated numerous positive effects on plants when added soil form amendment, including decrease pathogen assault infection. The primary chitosan-based antibacterial applications, administering drugs, vaccine delivery, callus tissue regeneration discussed. Finally, an active molecule with potential usage wide range fields, engineering, cancer therapy, Covid-19 treatment nasal formulation, antiviral administration, medicinal applications mainly Typhoid Malaria treatment, water purification, food packaging, agriculture, disease control

Language: Английский

Citations

21

Polymers for implantable devices DOI
Amir Ershad‐Langroudi, Nasrin Babazadeh,

Farhad Alizadegan

et al.

Journal of Industrial and Engineering Chemistry, Journal Year: 2024, Volume and Issue: 137, P. 61 - 86

Published: March 22, 2024

Language: Английский

Citations

17

Chitosan and Its Nanoparticles: A Multifaceted Approach to Antibacterial Applications DOI Creative Commons
Emir Akdaşçi, Hatice Duman, Furkan Eker

et al.

Nanomaterials, Journal Year: 2025, Volume and Issue: 15(2), P. 126 - 126

Published: Jan. 16, 2025

Chitosan, a multifaceted amino polysaccharide biopolymer derived from chitin, has extensive antibacterial efficacy against diverse pathogenic microorganisms, including both Gram-negative and Gram-positive bacteria, in addition to fungi. Over the course of last several decades, chitosan nanoparticles (NPs), which are polymeric bio-based, have garnered great deal interest as efficient agents. This is mostly due fact that they used wide variety applications, medical treatments, food, chemicals, agricultural products. Within context mechanism NPs, we present review provides an overview synthesis methods, novel procedures, compiles applications been developed field biomedicine. These include wound healing, drug delivery, dental treatment, water purification, agriculture, food preservation. In this, focus on mechanisms action factors determine activity its derivatives. conjunction with this line inquiry, researchers strongly urged concentrate their efforts developing ground-breaking NPs.

Language: Английский

Citations

6