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Yen-Hsiang Liu

Researcher at Fu Jen Catholic University

Publications -  46
Citations -  1419

Yen-Hsiang Liu is an academic researcher from Fu Jen Catholic University. The author has contributed to research in topics: Coordination polymer & Ligand. The author has an hindex of 21, co-authored 42 publications receiving 1351 citations. Previous affiliations of Yen-Hsiang Liu include National Taiwan University & National Taiwan Normal University.

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Metal-containing molecular rectangles: synthesis and photophysical properties

TL;DR: In this paper, the synthesis of macrocycles that contain nitrogen-, oxygen-, sulphur- and phosphorus-bridged ligands is described, including stepwise and self-assembly strategies as well as their photophysical and molecular recognition properties.
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[CdII(bpdc).H2O]n: A robust, thermally stable porous framework through a combination of a 2-D grid and a cadmium dicarboxylate cluster chain (H2bpdc = 2,2'-bipyridyl-4,4'-dicarboxylic acid)

TL;DR: The results show that the heptacoordinated cadmium center plays an important role in the overall framework rigidity and high thermal stability of compound 1.
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Influence of water content on the self-assembly of metal-organic frameworks based on pyridine-3,5-dicarboxylate

TL;DR: Water content was found to be an important factor in determining the topologies of the products in the self-assembly of divalent metal ions (Co2+, Cu2+) and pyridine-3,5-dicarboxylate under mild conditions.
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Cooperative Effect of Unsheltered Amide Groups on CO2 Adsorption Inside Open-Ended Channels of a Zinc(II)–Organic Framework

TL;DR: DFT calculations provided rationale for the intriguing 1:1 ratio of amide sorption sites to CO2 molecules and revealed that the nanochamber of compound 1 permits the slipped-parallel arrangement ofCO2 molecules, an arrangement found in crystal and gas-phase CO2 dimer.
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Synthesis and Photophysical Properties of Neutral Luminescent Rhenium-Based Molecular Rectangles

TL;DR: Fine-tuning of the cavity size of the rectangles improves their excited- state properties, which facilitate the study of excited-state electron-transfer reactions with electron acceptors and donors and host-guest binding.