Two-Dimensional Plasmonic Nanoparticle as a Nanoscale Sensor to Probe Polymer Brush Formation

被引:11
作者
Khan, Assad U. [1 ]
Scruggs, Clayton [1 ]
Hicks, David [2 ]
Liu, Guoliang [1 ,3 ]
机构
[1] Virginia Tech, Dept Chem, 800 West Campus Dr, Blacksburg, VA 24061 USA
[2] Virginia Tech, Mat Sci & Engn, 800 West Campus Dr, Blacksburg, VA 24061 USA
[3] Virginia Tech, Macromol Innovat Inst, 800 West Campus Dr, Blacksburg, VA 24061 USA
关键词
POLY(ETHYLENE GLYCOL); SILVER NANOPARTICLES; SOLUBILITY PROFILES; METAL NANOPARTICLES; GOLD NANOPARTICLES; OPTICAL-PROPERTIES; NANOPRISMS; RESONANCE; KINETICS; TRANSITION;
D O I
10.1021/acs.analchem.7b01361
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Conventional analysis and characterization of polymer brush formation relies on laborious methods that use a quartz crystal microbalance, atomic force microscope, microcantilever, or other tools that measure the concentration change of solutions. Herein we develop a simple and easy method that utilizes intrinsically flat twodimensional (2D) plasmonic nanoparticles as sensors for unveiling the mechanism of polymer brush formation on surfaces. Via ultraviolet visible spectroscopy, the plasmonic nanoparticles, can be used to determine the amount of polymers near the surface in situ. As the amount of polymers increases near the surface, the nanoparticle characteristic localized surface plasmon resonance wavelength red shifts, and the shift amount corresponds linearly to the polymer density near the surface. By functionalizing the nanoparticles in solutions of thiolated polyethylene glycol (PEG-SH) with or without PEG disulfide (PEG-S-S-PEG), the three-regime kinetics of the polymer brush formation is confirmed The fast adsorption and slow chain rearrangement in the first regime are found to be the causes of the latent regime. In the latent regime, the adsorbed polymer chains rearrange to anchor their ends onto the surface and contract to liberate space so that other polymer chains can graft onto the surface until saturation. The fundamental understanding gained herein enables the design of surfaces with complex chemistries and properties, which can find broad applications in responsive sensors, films, and coatings. Moreover, the novel analytical method of using 2D plasmonic nanoparticle as, a sensor to understand the polymer brush formation is applicable to investigating the grafting of other molecules such as self-assembled monolayers, protein, and DNA.
引用
收藏
页码:7541 / 7548
页数:8
相关论文
共 50 条
[21]   Insight into the Heterogeneity of Longitudinal Plasmonic Field in a Nanocavity Usingan Intercalated Two-Dimensional Atomic Crystal Probe with a ∼7 Å Resolution [J].
Chen, Siyu ;
Weng, Shirui ;
Xiao, Yuan-hui ;
Li, Pan ;
Qin, Miao ;
Zhou, Guoliang ;
Dong, Ronglu ;
Yang, Liangbao ;
Wu, De-yin ;
Tian, Zhong-qun .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2022, 144 (29) :13174-13183
[22]   Adaptive multiscale method for two-dimensional nanoscale adhesive contacts [J].
Tong Ruiting ;
Liu Geng ;
Liu Lan ;
Wu Liyan .
CHINESE JOURNAL OF MECHANICAL ENGINEERING, 2013, 26 (03) :606-612
[23]   Near-Infrared-Responsive Photoelectrochemical Aptasensing Platform Based on Plasmonic Nanoparticle-Decorated Two-Dimensional Photonic Crystals [J].
Li, Zhenzhen ;
Zhou, Xue ;
Yang, Jing ;
Fu, Baihe ;
Zhang, Zhonghai .
ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (24) :21417-21423
[24]   Formation of two-dimensional structures by tuning the driving force of chemical reactions: An interpretation of kinetic control [J].
Viswanath, B. ;
Kundu, Paromita ;
Ravishankar, N. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2009, 330 (01) :211-219
[25]   Plasmonic waveguides from Coulomb-engineered two-dimensional metals [J].
Jiang, Zhihao ;
Haas, Stephan ;
Rosner, Malte .
2D MATERIALS, 2021, 8 (03)
[26]   Plasmonic bimetallic two-dimensional supercrystals for H2 generation [J].
Herran, Matias ;
Juergensen, Sabrina ;
Kessens, Moritz ;
Hoeing, Dominik ;
Koeppen, Andrea ;
Sousa-Castillo, Ana ;
Parak, Wolfgang J. ;
Lange, Holger ;
Reich, Stephanie ;
Schulz, Florian ;
Cortes, Emiliano .
NATURE CATALYSIS, 2023, 6 (12) :1205-1214
[27]   FDTD Modeling of Plasmonic Enhancement in Two-Dimensional Gold Lattice Structures [J].
Norville, Casey ;
Smith, Kyle ;
Dawson, Jeremy M. ;
Gadde, Akshitha .
2017 IEEE 17TH INTERNATIONAL CONFERENCE ON NANOTECHNOLOGY (IEEE-NANO), 2017, :177-182
[28]   Plasmonic interferences in two-dimensional stacked double-disk array [J].
Zhang, Zong-Suo ;
Yang, Zhong-Jian ;
Li, Jian-Bo ;
Hao, Zhong-Hua ;
Wang, Qu-Quan .
APPLIED PHYSICS LETTERS, 2011, 98 (17)
[29]   Resonant proximity connector for two-dimensional sensor implantation [J].
Chigusa, Hiromasa ;
Makino, Yasutoshi ;
Shinoda, Hiroyuki .
2006 SICE-ICASE INTERNATIONAL JOINT CONFERENCE, VOLS 1-13, 2006, :5159-+
[30]   A Radical Polymer as a Two-Dimensional Organic Half Metal [J].
Lee, Eun Cheol ;
Choi, Young Cheol ;
Kim, Woo Youn ;
Singh, N. Jiten ;
Lee, Sik ;
Shim, Ji Hoon ;
Kim, Kwang S. .
CHEMISTRY-A EUROPEAN JOURNAL, 2010, 16 (40) :12141-12146