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DNA is made up of four chemical units called bases, usually represented by the letters A, C, G and T. The bases are paired to form the rungs of the twisted ladder structure of DNA.
Transmission electron microscopy of surface foils revealed PSBs with the typical, well-known ladder structure.
A simple example for a ladder structure is introduced to verify the formulation numerically.
Thus, the experimental period of the ladder structure has a displacement of Vstaget larger than the theoretical equations devised.
The dipole moment is high for planar rhombus and linear ladder structures of NiS and FeS nanoclusters.
The proposition of the existence of these ladder structures seems to us not reasonable and here we examine this hypothesis.
Partial PAN chains were anchored to the relatively rigid ladder structure, leading PAN chains folding with tensile deformation.
The approximation process starts by extracting the properties of the scattering matrix of the reference highpass ladder structures.
Compound 4 is a 2D parallel ladder structure, and through the interpenetrating btrb ligand, it constructs into 3D architectures.
In the latter case, the steps look rougher and the ladder structure is smoothed due to the higher contribution of optical noise, especially for.
The crystal structure of HK[1]·2MeOH·6.5H2O reveals a one-dimensional ladder structure in which [1]2− anions are connected by (i) cyanide/K+ and (ii) bpym/K+ coordination interactions.
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