Upgrading of bio-separation and bioanalysis using synthetic polymers : Molecularly imprinted polymers (MIPs), cryogels, stimuli-responsive polymers
(2022) In Engineering in Life Sciences 22(3-4). p.204-216- Abstract
Bio-separation plays a crucial role in many areas. Different polymers are suitable for bio-separation and are useful for applications in applications in both science and technology. Besides biopolymers, there are a broad spectrum of synthetic polymers with tailor-made properties. The synthetic polymers are characterized by their charges, solubility, hydrophilicity/hydrophobicity, sensitivity to environmental conditions and stability. Furthermore, ongoing developments are of great interest on biodegradable polymers for the treatment of diseases. Smart polymers have gained great attention due to their unique characteristics especially emphasizing simultaneously changing their chemical and physical property upon exposure to changes in... (More)
Bio-separation plays a crucial role in many areas. Different polymers are suitable for bio-separation and are useful for applications in applications in both science and technology. Besides biopolymers, there are a broad spectrum of synthetic polymers with tailor-made properties. The synthetic polymers are characterized by their charges, solubility, hydrophilicity/hydrophobicity, sensitivity to environmental conditions and stability. Furthermore, ongoing developments are of great interest on biodegradable polymers for the treatment of diseases. Smart polymers have gained great attention due to their unique characteristics especially emphasizing simultaneously changing their chemical and physical property upon exposure to changes in environmental conditions. In this review, methodologies applied in bio-separation using synthetic polymers are discussed and efficient candidates are focused for the construction of synthetic polymers.
(Less)
- author
- Aslıyüce, Sevgi ; Idil, Neslihan and Mattiasson, Bo LU
- organization
- publishing date
- 2022-03-01
- type
- Contribution to journal
- publication status
- published
- subject
- keywords
- cryogels, molecular imprinting, separation, smart polymers, synthetic polymers, two-phase systems
- in
- Engineering in Life Sciences
- volume
- 22
- issue
- 3-4
- pages
- 13 pages
- publisher
- Wiley-Blackwell
- external identifiers
-
- pmid:35382542
- scopus:85124896418
- ISSN
- 1618-0240
- DOI
- 10.1002/elsc.202100106
- language
- English
- LU publication?
- yes
- id
- 68ba84c4-c419-4419-8ba4-4d6201b023d7
- date added to LUP
- 2022-05-19 13:57:44
- date last changed
- 2025-03-08 18:57:12
@article{68ba84c4-c419-4419-8ba4-4d6201b023d7, abstract = {{<p>Bio-separation plays a crucial role in many areas. Different polymers are suitable for bio-separation and are useful for applications in applications in both science and technology. Besides biopolymers, there are a broad spectrum of synthetic polymers with tailor-made properties. The synthetic polymers are characterized by their charges, solubility, hydrophilicity/hydrophobicity, sensitivity to environmental conditions and stability. Furthermore, ongoing developments are of great interest on biodegradable polymers for the treatment of diseases. Smart polymers have gained great attention due to their unique characteristics especially emphasizing simultaneously changing their chemical and physical property upon exposure to changes in environmental conditions. In this review, methodologies applied in bio-separation using synthetic polymers are discussed and efficient candidates are focused for the construction of synthetic polymers.</p>}}, author = {{Aslıyüce, Sevgi and Idil, Neslihan and Mattiasson, Bo}}, issn = {{1618-0240}}, keywords = {{cryogels; molecular imprinting; separation; smart polymers; synthetic polymers; two-phase systems}}, language = {{eng}}, month = {{03}}, number = {{3-4}}, pages = {{204--216}}, publisher = {{Wiley-Blackwell}}, series = {{Engineering in Life Sciences}}, title = {{Upgrading of bio-separation and bioanalysis using synthetic polymers : Molecularly imprinted polymers (MIPs), cryogels, stimuli-responsive polymers}}, url = {{http://dx.doi.org/10.1002/elsc.202100106}}, doi = {{10.1002/elsc.202100106}}, volume = {{22}}, year = {{2022}}, }