Research output: Contribution to journal › Article › peer-review
Multilayer coatings based on gold nanoparticles and polymers with bovine serum albumin as a functional layer for the chiral separation in capillary electrochromatography. / Макеева, Дарья Валерьевна; Моргачева, Виолетта Павловна; Колобова, Екатерина Алексеевна; Соловьева, Елена Викторовна; Карцова, Людмила Алексеевна.
In: Journal of Separation Science, Vol. 47, No. 2, 2300864, 2024.Research output: Contribution to journal › Article › peer-review
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TY - JOUR
T1 - Multilayer coatings based on gold nanoparticles and polymers with bovine serum albumin as a functional layer for the chiral separation in capillary electrochromatography
AU - Макеева, Дарья Валерьевна
AU - Моргачева, Виолетта Павловна
AU - Колобова, Екатерина Алексеевна
AU - Соловьева, Елена Викторовна
AU - Карцова, Людмила Алексеевна
PY - 2024
Y1 - 2024
N2 - In this study, we developed physically adsorbed multi-layer coatings using poly-l-lysine or poly(diallyldimethylammonium chloride) and gold nanoparticles, which were functionalized with bovine serum albumin for the chiral separation in electrochromatography. The approach involves sequentially depositing positively charged polymers and negatively charged citrate-stabilized gold nanoparticles. By repeating this modification cycle, we created two- and four-layer coatings, which were sequentially functionalized with albumin forming three- and five-layer coatings that were finally applied for the separation of enantiomers of dl-tryptophan. The formed coatings exhibit stability across a pH range of 2–10 and feature a dense, uniform surface, as confirmed by scanning electron microscope images. The number of layers impacted nanoparticle deposition density, with five-layer coatings being denser than three-layer ones. Five-layer coatings enable baseline separation of dl-tryptophan enantiomers, whereas three-layer coatings require the presence of albumin in the background electrolyte for separation. Therefore, increasing the number of layers and gold nanoparticles density enhances albumin active center concentration on capillary walls, improving the separation of dl-tryptophan enantiomers. The five-layer coatings can be easily fabricated and possess good repeatability of analytes migration time.
AB - In this study, we developed physically adsorbed multi-layer coatings using poly-l-lysine or poly(diallyldimethylammonium chloride) and gold nanoparticles, which were functionalized with bovine serum albumin for the chiral separation in electrochromatography. The approach involves sequentially depositing positively charged polymers and negatively charged citrate-stabilized gold nanoparticles. By repeating this modification cycle, we created two- and four-layer coatings, which were sequentially functionalized with albumin forming three- and five-layer coatings that were finally applied for the separation of enantiomers of dl-tryptophan. The formed coatings exhibit stability across a pH range of 2–10 and feature a dense, uniform surface, as confirmed by scanning electron microscope images. The number of layers impacted nanoparticle deposition density, with five-layer coatings being denser than three-layer ones. Five-layer coatings enable baseline separation of dl-tryptophan enantiomers, whereas three-layer coatings require the presence of albumin in the background electrolyte for separation. Therefore, increasing the number of layers and gold nanoparticles density enhances albumin active center concentration on capillary walls, improving the separation of dl-tryptophan enantiomers. The five-layer coatings can be easily fabricated and possess good repeatability of analytes migration time.
KW - bovine serum albumin
KW - capillary electrochromatography
KW - chiral separation
KW - gold nanoparticles
KW - multilayer coatings
UR - https://www.mendeley.com/catalogue/f0cb67a5-a6bd-3c1f-bb13-845638c654a7/
U2 - 10.1002/jssc.202300864
DO - 10.1002/jssc.202300864
M3 - Article
VL - 47
JO - Journal of Separation Science
JF - Journal of Separation Science
SN - 1615-9306
IS - 2
M1 - 2300864
ER -
ID: 116480710