Biological nanopores elucidate the differences between isomers of mercaptobenzoic-capped gold clusters.
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[1] K. Honkala,et al. Dynamics of weak interactions in the ligand layer of meta-mercaptobenzoic acid protected gold nanoclusters Au68(m-MBA)32 and Au144(m-MBA)40. , 2020, Nanoscale.
[2] S. Sánchez,et al. Engineering Intelligent Nanosystems for Enhanced Medical Imaging , 2020, Adv. Intell. Syst..
[3] M. Bertino,et al. Resistive-Pulse Nanopore Sensing of Ligand Exchange at the Single Nanocluster Limit for Peptide Detection , 2020 .
[4] Yoonkyung Park,et al. Sequence-specific detection of single-stranded DNA with a gold nanoparticle-protein nanopore approach , 2020, Scientific Reports.
[5] P. Dugourd,et al. Structure and Charge Heterogeneity in Isomeric Au25(MBA)18 Nanoclusters - Insights from Ion Mobility and Mass Spectrometry. , 2020, The journal of physical chemistry. A.
[6] B. Kumar,et al. Gold nanoclusters as electrocatalysts: size, ligands, heteroatom doping, and charge dependences. , 2020, Nanoscale.
[7] Geoffrey I N Waterhouse,et al. Ultrasmall Au nanoclusters for biomedical and biosensing applications: A mini-review. , 2019, Talanta.
[8] Akihiko Kudo,et al. Atomic-Level Understanding of the Effect of Heteroatom Doping of the Cocatalyst on Water-Splitting Activity in AuPd or AuPt Alloy Cluster-Loaded BaLa4Ti4O15 , 2019, ACS Applied Energy Materials.
[9] Thomas J Webster,et al. A review of small molecules and drug delivery applications using gold and iron nanoparticles , 2019, International journal of nanomedicine.
[10] Shimaa Eissa,et al. An electrochemical immunosensor for the corona virus associated with the Middle East respiratory syndrome using an array of gold nanoparticle-modified carbon electrodes , 2019, Microchimica Acta.
[11] M. Bertino,et al. Ligand-Induced Structural Changes of Thiolate-Capped Gold Nanoclusters Observed with Resistive-Pulse Nanopore Sensing. , 2019, Journal of the American Chemical Society.
[12] P. Dugourd,et al. Isomeric Effect of Mercaptobenzoic Acids on the Synthesis, Stability, and Optical Properties of Au25(MBA)18 Nanoclusters , 2018, ACS omega.
[13] Elisa J. Campos,et al. Single molecule characterisation of metal nanoparticles using nanopore-based stochastic detection methods , 2018 .
[14] Manzhou Zhu,et al. Combining the Single-Atom Engineering and Ligand-Exchange Strategies: Obtaining the Single-Heteroatom-Doped Au16Ag1(S-Adm)13 Nanocluster with Atomically Precise Structure. , 2018, Inorganic chemistry.
[15] M. Pettersson,et al. Dynamic Stabilization of the Ligand-Metal Interface in Atomically Precise Gold Nanoclusters Au68 and Au144 Protected by meta-Mercaptobenzoic Acid. , 2017, ACS nano.
[16] R. Kornberg,et al. Structure Determination of a Water-Soluble 144-Gold Atom Particle at Atomic Resolution by Aberration-Corrected Electron Microscopy. , 2017, ACS nano.
[17] Y. Negishi,et al. Precise synthesis, functionalization and application of thiolate-protected gold clusters , 2016 .
[18] J. Kasianowicz,et al. Single Molecule Discrimination of Heteropolytungstates and Their Isomers in Solution with a Nanometer-Scale Pore. , 2016, Journal of the American Chemical Society.
[19] M. Pettersson,et al. Acid–Base Properties and Surface Charge Distribution of the Water-Soluble Au102(pMBA)44 Nanocluster , 2016 .
[20] J. Reiner,et al. Infrared Laser Heating Applied to Nanopore Sensing for DNA Duplex Analysis. , 2016, Analytical chemistry.
[21] W. Peukert,et al. Fast and Slow Ligand Exchange at the Surface of Colloidal Gold Nanoparticles , 2016 .
[22] C. Aikens,et al. Ligand Exchange Mechanism on Thiolate Monolayer Protected Au25(SR)18 Nanoclusters , 2015 .
[23] Douglas R. Kauffman,et al. Tuning the Magic Size of Atomically Precise Gold Nanoclusters via Isomeric Methylbenzenethiols. , 2015, Nano letters.
[24] O. Bakr,et al. Neat and complete: thiolate-ligand exchange on a silver molecular nanoparticle. , 2014, Journal of the American Chemical Society.
[25] T. Bürgi,et al. In situ reaction monitoring reveals a diastereoselective ligand exchange reaction between the intrinsically chiral Au38(SR)24 and chiral thiols. , 2012, Journal of the American Chemical Society.
[26] C. Soares,et al. The role of Lys147 in the interaction between MPSA-gold nanoparticles and the α-hemolysin nanopore. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[27] U. Bockelmann,et al. Rectification of the Current in α-Hemolysin Pore Depends on the Cation Type: The Alkali Series Probed by Molecular Dynamics Simulations and Experiments , 2011 .
[28] Thomas Bürgi,et al. Ligand exchange reactions on Au(38) and Au(40) clusters: a combined circular dichroism and mass spectrometry study. , 2010, Journal of the American Chemical Society.
[29] F. Stellacci,et al. Electrophysiological study of single gold nanoparticle/alpha-Hemolysin complex formation: a nanotool to slow down ssDNA through the alpha-Hemolysin nanopore. , 2009, Small.
[30] Lai‐Sheng Wang,et al. Facile syntheses of monodisperse ultrasmall Au clusters. , 2006, The journal of physical chemistry. B.
[31] Savka I. Stoeva,et al. Digestive Ripening of Thiolated Gold Nanoparticles: The Effect of Alkyl Chain Length , 2002 .
[32] Christopher M. Sorensen,et al. Digestive Ripening, Nanophase Segregation and Superlattice Formation in Gold Nanocrystal Colloids , 2000 .
[33] R. Murray,et al. Dynamics of Place-Exchange Reactions on Monolayer-Protected Gold Cluster Molecules , 1999 .
[34] J. Gouaux,et al. Structure of Staphylococcal α-Hemolysin, a Heptameric Transmembrane Pore , 1996, Science.
[35] R. Crooks,et al. Interactions between Organized, Surface-Confined Monolayers and Vapor-Phase Probe Molecules. 9. Structure/Reactivity Relationship between Three Surface-Confined Isomers of Mercaptobenzoic Acid and Vapor-Phase Decylamine , 1996 .