TY - JOUR
T1 - Green metallochromic cellulose dipstick for Fe(III) using chitosan nanoparticles and cyanidin-based natural anthocyanins red-cabbage extract
AU - Khattab, Tawfik A.
AU - El-Naggar, Mehrez E.
AU - Pannipara, Mehboobali
AU - Wageh, S.
AU - Abou Taleb, Manal F.
AU - Abu-Saied, M. A.
AU - El Sayed, Ibrahim El Tantawy
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/3/31
Y1 - 2022/3/31
N2 - Environmentally-friendly, cyanidin(Cy)-based anthocyanin isolated from red-cabbage served as a spectroscopic probe imprinted onto chitosan nanoparticles (CsNPs), which were in turn integrated onto cellulose paper strip (CPS) as a host matrix to develop a metallochromic solid state sensor for real-time selective determination of ferric ions in an aqueous medium. The ferric transition metal ions in aqueous environments were detected using a novel, simple, portable, fast responsive, low-cost, real-time, environmentally safe, reversible and colorimetric sensor based on chitosan nanoparticles as a hosting biopolymer and cyanidin phenol chromophore as a biomolecular probe. In order to use the cyanidin biomolecule as a pH indicator and chelating agent, it was purified from red-cabbage and added into the CsNPs biosensor film. The colorimetric shift increased in direct proportion to the ferric ion concentration. As a result, the current research that was both qualitative and quantitative was carried out. While the Cy-CsNPs-CPS sensor showed high selectivity for ferric ions, no color change was detected for other metal cations. It was discovered that the detection process occurred as a result of a coordination complex formed between the active sites of phenolic cyanidin and Fe(III) ions.
AB - Environmentally-friendly, cyanidin(Cy)-based anthocyanin isolated from red-cabbage served as a spectroscopic probe imprinted onto chitosan nanoparticles (CsNPs), which were in turn integrated onto cellulose paper strip (CPS) as a host matrix to develop a metallochromic solid state sensor for real-time selective determination of ferric ions in an aqueous medium. The ferric transition metal ions in aqueous environments were detected using a novel, simple, portable, fast responsive, low-cost, real-time, environmentally safe, reversible and colorimetric sensor based on chitosan nanoparticles as a hosting biopolymer and cyanidin phenol chromophore as a biomolecular probe. In order to use the cyanidin biomolecule as a pH indicator and chelating agent, it was purified from red-cabbage and added into the CsNPs biosensor film. The colorimetric shift increased in direct proportion to the ferric ion concentration. As a result, the current research that was both qualitative and quantitative was carried out. While the Cy-CsNPs-CPS sensor showed high selectivity for ferric ions, no color change was detected for other metal cations. It was discovered that the detection process occurred as a result of a coordination complex formed between the active sites of phenolic cyanidin and Fe(III) ions.
KW - Cellulose strip
KW - Chitosan nanoparticles
KW - Colorimetric sensor
KW - Cyanidin
KW - Ferric ions
UR - http://www.scopus.com/inward/record.url?scp=85122945591&partnerID=8YFLogxK
U2 - 10.1016/j.ijbiomac.2022.01.067
DO - 10.1016/j.ijbiomac.2022.01.067
M3 - Article
C2 - 35033529
AN - SCOPUS:85122945591
SN - 0141-8130
VL - 202
SP - 269
EP - 277
JO - International Journal of Biological Macromolecules
JF - International Journal of Biological Macromolecules
ER -