Chiral gold(I)-containing polymeric composites: chiroptical sensing and circularly polarized luminescence
暂无分享,去创建一个
Qiang Zhao | Qun He | W. Bu | Mengzhu Wang | Chunhua Cai | Pingxia Guo | Ruiqi Jin
[1] Anilesh Kumar,et al. Chiral Tricationic Tris(1,2-diphenylethylenediamine) Cobalt(III) Hydrogen Bond Donor Catalysts with Defined Carbon/Metal Configurations; Matched/Mismatched Effects upon Enantioselectivities with Enantiomeric Chiral Counter Anions , 2020 .
[2] P. Retailleau,et al. Tethered Counterion-Directed Catalysis: Merging the Chiral Ion-pairing and Bifunctional Ligand Strategies in Enantioselective Gold(I) Catalysis. , 2020, Journal of the American Chemical Society.
[3] K. Staszak,et al. Lanthanides complexes – Chiral sensing of biomolecules , 2019, Coordination Chemistry Reviews.
[4] James D White,et al. Asymmetric Catalysis Using Chiral Salen-Metal Complexes: Recent Advances. , 2019, Chemical reviews.
[5] Jing Sun,et al. Light- and Metal Ion-Induced Self-Assembly and Reassembly Based on Block Copolymers Containing a Photoresponsive Polypeptide Segment , 2019, Macromolecules.
[6] Avinash Bajaj,et al. Emerging biomedical applications of polyaspartic acid-derived biodegradable polyelectrolytes and polyelectrolyte complexes. , 2019, Journal of materials chemistry. B.
[7] V. Yam,et al. Energy Landscape in Supramolecular Coassembly of Platinum(II) Complexes and Polymers: Morphological Diversity, Transformation, and Dilution Stability of Nanostructures. , 2018, Journal of the American Chemical Society.
[8] Qiang Zhao,et al. Recent Progress on Circularly Polarized Luminescent Materials for Organic Optoelectronic Devices , 2018, Advanced Optical Materials.
[9] Bingran Yu,et al. Intensely phosphorescent block copolymer micelles containing gold(i) complexes. , 2018, Soft matter.
[10] Qun He,et al. Coordination-driven micellelization of block copolymers with gold(i) complexes induces remarkable phosphorescence enhancements with reversible mechanochromism. , 2018, Soft matter.
[11] Qun He,et al. Phosphorescent and semiconductive fiber-like micelles formed by platinum(II) complexes and block copolymers , 2017 .
[12] Chenhui Zhu,et al. Two-Dimensional Supramolecular Assemblies from pH-Responsive Poly(ethyl glycol)-b-poly(l-glutamic acid)-b-poly(N-octylglycine) Triblock Copolymer. , 2017, Biomacromolecules.
[13] Nijuan Liu,et al. Stepwise self-assembly of a block copolymer-platinum(ii) complex hybrid in solvents of variable quality: from worm-like micelles to free-standing sheets to vesicle-like nanostructures. , 2017, Soft matter.
[14] Vonika Ka-Man Au,et al. Light-Emitting Self-Assembled Materials Based on d(8) and d(10) Transition Metal Complexes. , 2015, Chemical reviews.
[15] Nijuan Liu,et al. Self-assembly of star micelle into vesicle in solvents of variable quality: the star micelle retains its core-shell nanostructure in the vesicle. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[16] A. Gennaro,et al. Dinuclear gold(I) complexes with propylene bridged N-heterocyclic dicarbene ligands: synthesis, structures, and trends in reactivities and properties. , 2013, Dalton transactions.
[17] Kazuki Yoshii,et al. Polypeptides-induced self-aggregation and tuning of emission properties of luminescent complexes , 2012 .
[18] L. Cavallo,et al. Blue-emitting dinuclear N-heterocyclic dicarbene gold(I) complex featuring a nearly unit quantum yield. , 2012, Inorganic chemistry.
[19] Weisheng Liu,et al. Luminescent polymeric hybrids formed by platinum(II) complexes and block copolymers. , 2011, Chemical communications.
[20] V. Yam,et al. Self-assembly of luminescent alkynylplatinum(II) terpyridyl complexes: modulation of photophysical properties through aggregation behavior. , 2011, Accounts of chemical research.
[21] Kazuki Yoshii,et al. Controlled emission of platinum(II) terpyridyl complexes with poly-l-glutamic acid , 2010 .
[22] V. Yam,et al. Selective ion probe for Mg2+ based on Au(I)Au(I) interactions in a tripodal alkynylgold(I) complex with oligoether pendants. , 2009, Chemical communications.
[23] B. Tang,et al. Chiral poly(4-ethynylbenzoyl-l-valine)-induced helical self-assembly of alkynylplatinum(II) terpyridyl complexes with tunable electronic absorption, emission, and circular dichroism changes. , 2009, Chemistry.
[24] Liquan Wang,et al. Self-assembly behavior of pH- and thermosensitive amphiphilic triblock copolymers in solution: experimental studies and self-consistent field theory simulations. , 2008, The journal of physical chemistry. B.
[25] Ibrahim Eryazici,et al. Square-planar Pd(II), Pt(II), and Au(III) terpyridine complexes: their syntheses, physical properties, supramolecular constructs, and biomedical activities. , 2008, Chemical reviews.
[26] G. L. Hamilton,et al. A Powerful Chiral Counterion Strategy for Asymmetric Transition Metal Catalysis , 2007, Science.
[27] V. Yam,et al. Single-stranded nucleic acid-induced helical self-assembly of alkynylplatinum(II) terpyridyl complexes , 2006, Proceedings of the National Academy of Sciences.
[28] L. Shimon,et al. Rhodium complexes with chiral counterions: achiral catalysts in chiral matrices , 2004 .
[29] N. Kimizuka,et al. Pillared honeycomb nanoarchitectures formed on solid surfaces by the self-assembly of lipid-packaged one-dimensional Pt complexes , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[30] Atsushi Harada,et al. Formation of Polyion Complex Micelles in an Aqueous Milieu from a Pair of Oppositely-Charged Block Copolymers with Poly(ethylene glycol) Segments , 1995 .