TY - JOUR
T1 - Versatility of Hydrogels
T2 - From Synthetic Strategies, Classification, and Properties to Biomedical Applications
AU - Ahmad, Zubair
AU - Salman, Saad
AU - Khan, Shahid Ali
AU - Amin, Abdul
AU - Rahman, Zia Ur
AU - Al-Ghamdi, Youssef O.
AU - Akhtar, Kalsoom
AU - Bakhsh, Esraa M.
AU - Khan, Sher Bahadar
N1 - Publisher Copyright:
© 2022 by the authors. Licensee MDPI, Basel, Switzerland.
PY - 2022/3
Y1 - 2022/3
N2 - Hydrogels are three-dimensional, cross-linked, and supramolecular networks that can absorb significant volumes of water. Hydrogels are one of the most promising biomaterials in the biological and biomedical fields, thanks to their hydrophilic properties, biocompatibility, and wide therapeutic potential. Owing to their nontoxic nature and safe use, they are widely accepted for various biomedical applications such as wound dressing, controlled drug delivery, bone regeneration, tissue engineering, biosensors, and artificial contact lenses. Herein, this review comprises different synthetic strategies for hydrogels and their chemical/physical characteristics, and various analytical, optical, and spectroscopic tools for their characterization are discussed. A range of synthetic approaches is also covered for the synthesis and design of hydrogels. It will also cover biomedical applications such as bone regeneration, tissue engineering, and drug delivery. This review addressed the fundamental, general, and applied features of hydrogels in order to facilitate undergraduates, graduates, biomedical students, and researchers in a variety of domains.
AB - Hydrogels are three-dimensional, cross-linked, and supramolecular networks that can absorb significant volumes of water. Hydrogels are one of the most promising biomaterials in the biological and biomedical fields, thanks to their hydrophilic properties, biocompatibility, and wide therapeutic potential. Owing to their nontoxic nature and safe use, they are widely accepted for various biomedical applications such as wound dressing, controlled drug delivery, bone regeneration, tissue engineering, biosensors, and artificial contact lenses. Herein, this review comprises different synthetic strategies for hydrogels and their chemical/physical characteristics, and various analytical, optical, and spectroscopic tools for their characterization are discussed. A range of synthetic approaches is also covered for the synthesis and design of hydrogels. It will also cover biomedical applications such as bone regeneration, tissue engineering, and drug delivery. This review addressed the fundamental, general, and applied features of hydrogels in order to facilitate undergraduates, graduates, biomedical students, and researchers in a variety of domains.
KW - Applications
KW - Classification
KW - Drug delivery
KW - Hydrogels
KW - Synthetic strategies
KW - Wound healing
UR - https://www.scopus.com/pages/publications/85126642326
U2 - 10.3390/gels8030167
DO - 10.3390/gels8030167
M3 - Review article
AN - SCOPUS:85126642326
SN - 2310-2861
VL - 8
JO - Gels
JF - Gels
IS - 3
M1 - 167
ER -