Enantiospecific electrodeposition of chiral CuO films on Cu(110) from aqueous Cu(II) tartrate and amino acid complexes [PDF]
CuO films were anodically electrodeposited onto Cu(1 1 0) single crystals from alkaline solutions of Cu(II) complexed with tartrate, alanine, valine, and glycine. In all cases the films were epitaxial, exhibiting varying amounts of the chiral orientations (1 1 0) and (1 1 0).
Jay Switzer, Eric W Bohannan
exaly +3 more sources
Epitaxial Electrodeposition of Chiral Metal Surfaces on Silicon(643) [PDF]
Surfaces of achiral materials exhibit two-dimensional chirality if they lack mirror symmetry. An example is the (643) surface of face-centered-cubic metals such as Au. The (643) and (6̅4̅3̅) surfaces are non-superimposable mirror images of each other.
Qingzhi Chen +2 more
exaly +4 more sources
Enantiospecific Electrodeposition of Chiral CuO Films from Copper(II) Complexes of Tartaric and Amino Acids on Single-Crystal Au(001) [PDF]
Chiral films of CuO were electrochemically deposited onto achiral Au(001) using chiral precursors such as tartaric acid and the amino acids alanine and valine to complex the Cu(II). The chirality of the electrodeposited films was dictated by the chiral solution precursor.
Shuji Nakanishi +2 more
exaly +3 more sources
Epitaxial electrodeposition of chiral CuO films from copper(ii) complexes of malic acid on Cu(111) and Cu(110) single crystals [PDF]
Chiral films of CuO were anodically electrodeposited onto Cu(111) and Cu(110) single crystals from alkaline solutions of Cu(II) complexed with the malate ion. The chirality of the film was directed by the chiral solution precursor. X-Ray diffraction pole figures and stereographic projections were used to determine the absolute configuration of the ...
Steven Limmer +2 more
exaly +3 more sources
Enantiospecific Electrodeposition of Chiral CuO Films on Single-Crystal Cu(111) [PDF]
Epitaxial films of monoclinic CuO have been electrodeposited on single-crystal Cu(111) from solutions containing either (S,S)- or (R,R)-tartrate. X-ray pole figure analysis reveals that the CuO film grown from (S,S)-tartrate exhibits a (1) out-of-plane orientation while the film grown from (R,R)-tartrate has a (11) orientation. Even though CuO does not
Eric W, Bohannan +3 more
openaire +3 more sources
Related searches:
One-step electrodeposition of the MOF@CCQDs/NiF electrode for chiral recognition of tyrosine isomers
Dalton Transactions, 2020Electrochemical enantiorecognition of tyrosine (Tyr) isomers using a MOF@CCQDs/NiF electrode prepared by electrodepositing a metal–organic framework (MOF) and chiral carbon quantum dots (CCQDs) on Ni foil is reported.
Ying Hou, Huangxian Ju, Xuan Kuang
exaly +3 more sources
Electrodeposition of Chiral Polymer–Carbon Nanotube Composite Films
ChemPhysChem, 2007Geoffrey Mitchell +2 more
exaly +3 more sources
Inducing enantioselectivity in electrodeposited CuO films by chiral etching
Electrochimica Acta, 2008The enantioselectivity of electrodeposited CuO with a chiral orientation is enhanced if the CuO is first etched in a solution of tartaric acid. Electrochemical quartz crystal microbalance studies show that CuO(111) electrodeposited from l-tartrate etches faster in l-tartaric acid, whereas CuO(111) electrodeposited from d-tartrate etches faster in d ...
Shaibal K. Sarkar +3 more
openaire +1 more source
Chiral Electrode Behaviors of Magneto-Electrodeposited Films
ECS Meeting Abstracts, 2008Abstract not Available.
openaire +1 more source
The development of enantioselective sensing platforms combining operational simplicity with high efficiency remains a persistent challenge in interdisciplinary fields spanning biochemical analysis, pharmaceutical development, and clinical diagnostics.
Yang Sheng +5 more
openaire +1 more source

