Dual Control of Interparticle Forces in Assembly of Gold Nanoparticles

被引:6
|
作者
Hu, Bo [1 ]
Cao, Xian [1 ]
Zhang, Peng [1 ]
机构
[1] Univ Cincinnati, Dept Chem, Cincinnati, OH 45221 USA
来源
CHEMPLUSCHEM | 2013年 / 78卷 / 06期
关键词
aggregation; gold; nanoparticles; self-assembly; glutathione; ionic strength; NANOSTRUCTURES; NANOCRYSTALS; EQUILIBRIUM; SENSORS; SALT; DNA;
D O I
10.1002/cplu.201300091
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nanoparticles are known to self-assemble into large aggregates through interparticle and external forces. Understanding how interparticle interaction forces affect the construction and organization of nanomaterials is of growing importance to the development of the self-assembly technique. Current studies tend to focus on the individual factors and lack the collective effects from multiple forces as virus, lipid, or peptide does. The dual control on the self-assembly process of citrate-capped Au nanoparticles (AuNPs) mediated by the interparticle forces is reported. This self-assembly process is governed by the collective effects of both thiol-containing biomolecules and the ionic strength of dielectric medium. Thiol-containing biomolecules can effectively replace surface citrate molecules on AuNPs forming stable AuS bonds, leading to the lowering of surface potential or charge. Ionic strength of the solution can decrease the ion binding and the screening length of the double-layer repulsion. When these two factors are in play simultaneously, they collectively affect the AuNPs self-assembly process through the interparticle interactions by contributions from both factors, which have been interrogated based on the classical Derjaguin-Landau-Verwey-Overbeek theory. It is interesting to observe the existence of a quasi-stable state existed between two aggregated states, where two factors cancel each other and the AuNPs remain well dispersed, indicating that their concurrent effects are not simply additive. The results provide new insight to the assembly process of metal nanoparticles, and may open up new avenues to manipulate process.
引用
收藏
页码:506 / 514
页数:9
相关论文
共 50 条
  • [41] LATENT INTERPARTICLE FORCES IN CLAYS
    PARRY, RHG
    NATURE, 1959, 183 (4660) : 538 - 539
  • [42] Simple ions control the elasticity of calcite gels via interparticle forces
    Liberto, Teresa
    Barentin, Catherine
    Colombani, Jean
    Costa, Anna
    Gardini, Davide
    Bellotto, Maurizio
    Le Merrer, Marie
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2019, 553 : 280 - 288
  • [43] INTERPARTICLE FORCES IN COLLOID SCIENCE
    OVERBEEK, JTG
    POWDER TECHNOLOGY, 1984, 37 (JAN-) : 195 - 208
  • [44] Lysine mediated assembly of gold nanoparticles
    Horovitz, Ossi
    Mocanu, Aurora
    Tomoaia, Gheorghe
    Bobos, Liviu
    Dubert, Diana
    Daian, Iulia
    Yusanis, Traianos
    Tomoaia-Cotisel, Maria
    STUDIA UNIVERSITATIS BABES-BOLYAI CHEMIA, 2007, 52 (01): : 97 - 108
  • [45] Photobiologically Directed Assembly of Gold Nanoparticles
    Dietler, Julia
    Liang, Chen
    Frank, Saskia
    Mueller, Ann-Kathrin
    Greiner, Andreas
    Moeglich, Andreas
    ADVANCED BIOLOGY, 2021, 5 (05):
  • [46] Cysteine mediated assembly of gold nanoparticles
    Petean, I.
    Tomoaia, Gh
    Horovitz, O.
    Mocanu, A.
    Tomoaia-Cotisel, M.
    JOURNAL OF OPTOELECTRONICS AND ADVANCED MATERIALS, 2008, 10 (09): : 2289 - 2292
  • [47] Assembly of gold nanoparticles on DNA strands
    Noyong, M
    Gloddek, K
    Simon, U
    BIOINSPIRED NANOSCALE HYBRID SYSTEMS, 2003, 735 : 153 - 158
  • [48] Directing the morphology and assembly of gold nanoparticles
    Liz-Marzan, Luis M.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245
  • [49] Control of Self-Assembly of DNA Tubules Through Integration of Gold Nanoparticles
    Sharma, Jaswinder
    Chhabra, Rahul
    Cheng, Anchi
    Brownell, Jonathan
    Liu, Yan
    Yan, Hao
    SCIENCE, 2009, 323 (5910) : 112 - 116
  • [50] Size control of aggregations via self-assembly of amphiphilic gold nanoparticles
    Jang, Hyun-Jun
    Lee, Hee-Young
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2018, 538 : 574 - 582