Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands

Hybrid inorganic-organic networks have been studied in both chemistry and materials science due to properties, (e.g. porosity, magnetic and electronic behaviors) that may lead to applications in catalysis, gas absorption and storage. It is important to understand the different structural topologies...

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Main Author: Hu, Liangming
Other Authors: Chemistry
Format: Others
Published: Virginia Tech 2014
Subjects:
Online Access:http://hdl.handle.net/10919/26945
http://scholar.lib.vt.edu/theses/available/etd-04172009-155646/
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-269452020-09-26T05:33:48Z Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands Hu, Liangming Chemistry Hanson, Brian E. Gandour, Richard D. Merola, Joseph S. Slebodnick, Carla Angel, Ross J. hybrid networks hydrothermal synthesis templates ligands transition metal ions Hybrid inorganic-organic networks have been studied in both chemistry and materials science due to properties, (e.g. porosity, magnetic and electronic behaviors) that may lead to applications in catalysis, gas absorption and storage. It is important to understand the different structural topologies shown by hybrid networks to help develop practical applications for these materials. The research is focused on the design and synthesis of well-defined hybrid network structures that have potential to contain molecular size cavities that can be used for catalysis and gas storage. In the field of organic-inorganic hybrid networks, the goals are to design and synthesize 1D, 2D and 3D networks with cavities, and to characterize them by X-ray, TGA and surface area measurements. Twenty-six networks have been successfully made with interesting structure topologies. These hybrid network structures are classified into three series based on their ligands. Series I contains ten hybrid networks constructed from the flexible ligand, 4, 4â -trimethylenedipyridine¬ (TMDP),¬ Zn2+ ions, and H3PO3, and with aromatic alcohols as templates to direct the formation of various hybrid network structures. Series II consists of five structures constructed from the relatively rigid ligand, 4, 4â -bisimidazolelybipyridine (BIB)¬¬ with metal ions (Cu2+, Ni2+) and the conjugated bases of H3PO3 and H3PO4. The BIB ligand is not commercially available so is produced and characterized by NMR, mass spectrometry and TGA. Rigid network structures were expected to construct with pores of molecular dimensions with the BIB ligand. To date, the BIB ligand has not yield the desired porous network, however, these 3D hybrid networks have interesting topologies, one of which is an interdigitated network that is the precursor for 3D interpenetrated networks. Series III contains five hybrid structures constructed from various organic ligands, such as tartaric acid, picolinic acid and 1, 2, 4-triazole. In addition to the hybrid networks, six hydrogen bonded networks were prepared. Graph-Analysis is applied to study these hydrogen bonded network structures. The Ï â ¦.Ï interaction is also discussed within the hydrogen bonded networks. Ph. D. 2014-03-14T20:09:53Z 2014-03-14T20:09:53Z 2009-04-15 2009-04-17 2009-04-30 2009-04-30 Dissertation etd-04172009-155646 http://hdl.handle.net/10919/26945 http://scholar.lib.vt.edu/theses/available/etd-04172009-155646/ Thesis_Hu_V2.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic hybrid networks
hydrothermal synthesis
templates
ligands
transition metal ions
spellingShingle hybrid networks
hydrothermal synthesis
templates
ligands
transition metal ions
Hu, Liangming
Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands
description Hybrid inorganic-organic networks have been studied in both chemistry and materials science due to properties, (e.g. porosity, magnetic and electronic behaviors) that may lead to applications in catalysis, gas absorption and storage. It is important to understand the different structural topologies shown by hybrid networks to help develop practical applications for these materials. The research is focused on the design and synthesis of well-defined hybrid network structures that have potential to contain molecular size cavities that can be used for catalysis and gas storage. In the field of organic-inorganic hybrid networks, the goals are to design and synthesize 1D, 2D and 3D networks with cavities, and to characterize them by X-ray, TGA and surface area measurements. Twenty-six networks have been successfully made with interesting structure topologies. These hybrid network structures are classified into three series based on their ligands. Series I contains ten hybrid networks constructed from the flexible ligand, 4, 4â -trimethylenedipyridine¬ (TMDP),¬ Zn2+ ions, and H3PO3, and with aromatic alcohols as templates to direct the formation of various hybrid network structures. Series II consists of five structures constructed from the relatively rigid ligand, 4, 4â -bisimidazolelybipyridine (BIB)¬¬ with metal ions (Cu2+, Ni2+) and the conjugated bases of H3PO3 and H3PO4. The BIB ligand is not commercially available so is produced and characterized by NMR, mass spectrometry and TGA. Rigid network structures were expected to construct with pores of molecular dimensions with the BIB ligand. To date, the BIB ligand has not yield the desired porous network, however, these 3D hybrid networks have interesting topologies, one of which is an interdigitated network that is the precursor for 3D interpenetrated networks. Series III contains five hybrid structures constructed from various organic ligands, such as tartaric acid, picolinic acid and 1, 2, 4-triazole. In addition to the hybrid networks, six hydrogen bonded networks were prepared. Graph-Analysis is applied to study these hydrogen bonded network structures. The Ï â ¦.Ï interaction is also discussed within the hydrogen bonded networks. === Ph. D.
author2 Chemistry
author_facet Chemistry
Hu, Liangming
author Hu, Liangming
author_sort Hu, Liangming
title Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands
title_short Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands
title_full Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands
title_fullStr Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands
title_full_unstemmed Inorganic-Organic Hybrid Networks Constructed from Different Metal Ions and Ligands
title_sort inorganic-organic hybrid networks constructed from different metal ions and ligands
publisher Virginia Tech
publishDate 2014
url http://hdl.handle.net/10919/26945
http://scholar.lib.vt.edu/theses/available/etd-04172009-155646/
work_keys_str_mv AT huliangming inorganicorganichybridnetworksconstructedfromdifferentmetalionsandligands
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