TCI America 4,4'-Dichlorobenzophenone D1621

Description
4,4'-Dichlorobenzoph enone / Polyvinyl chloride and polyethylene polymers, which have long been the mainstay of industrial polymers, are now making way for new high performance polymers. Engineering plastics are polymers that have various properties designed into the polymer. For example, some polymers are designed for thermal resistance, such as polyamide, and polycarbonate, which are widely used these days. The thermal resistance of a polymer is determined by the softening point, as the softening point rises with the increase in the material strength. To make improvements in the softening points and material strength, the super engineering plastics such as polysulfone, polyether sulfone, polyarylate and polyimide have been developed. The softening points of these polymers are all above 150 °C, and these utilized in materials of ï¬reman uniform and ulletproof vest, and so on. Active R&D is continuing to take place to further improve the performance.1) On the other hand, there have been active experiments in adding new functions to the polymers, such as the electrical, optical, medical and biological properties. For example, copolymers which are obtained by the polymerization of ï¬uorine containing monomers and variety of monomers have been utilized as photoresists, optical ï¬ber dressings, oxygen enrichment membranes, and membrane oxygenators. Polysilane has the maximum absorption in the ultraviolet region, and also has photosensitivity; therefore, it can be used as a positive type resist with excellent oxygen plasma resistance.2) Polylactic acid (PLA) has been commercialized as an environmentally-frie ndly polymer, being compatible with the natural environment. Furthermore, it can save fossil resources as it is made of biomass raw materials.3) Further broad applications are expected to be made with functional polymers, thus R&D in this ï¬ eld is highly promising. The page below shows a wide variety of monomers and intermediates as building blocks for functional polymers. These are surely useful for the development of novel polymers.
Description
4,4'-Dichlorobenzoph enone / Polyvinyl chloride and polyethylene polymers, which have long been the mainstay of industrial polymers, are now making way for new high performance polymers. Engineering plastics are polymers that have various properties designed into the polymer. For example, some polymers are designed for thermal resistance, such as polyamide, and polycarbonate, which are widely used these days. The thermal resistance of a polymer is determined by the softening point, as the softening point rises with the increase in the material strength. To make improvements in the softening points and material strength, the super engineering plastics such as polysulfone, polyether sulfone, polyarylate and polyimide have been developed. The softening points of these polymers are all above 150 °C, and these utilized in materials of ï¬reman uniform and ulletproof vest, and so on. Active R&D is continuing to take place to further improve the performance.1) On the other hand, there have been active experiments in adding new functions to the polymers, such as the electrical, optical, medical and biological properties. For example, copolymers which are obtained by the polymerization of ï¬uorine containing monomers and variety of monomers have been utilized as photoresists, optical ï¬ber dressings, oxygen enrichment membranes, and membrane oxygenators. Polysilane has the maximum absorption in the ultraviolet region, and also has photosensitivity; therefore, it can be used as a positive type resist with excellent oxygen plasma resistance.2) Polylactic acid (PLA) has been commercialized as an environmentally-frie ndly polymer, being compatible with the natural environment. Furthermore, it can save fossil resources as it is made of biomass raw materials.3) Further broad applications are expected to be made with functional polymers, thus R&D in this ï¬ eld is highly promising. The page below shows a wide variety of monomers and intermediates as building blocks for functional polymers. These are surely useful for the development of novel polymers.

Suppliers

Company
Product
Description
Supplier Links
4,4'-Dichlorobenzophenone - D1621 - TCI America
Portland, OR, USA
4,4'-Dichlorobenzophenone
D1621
4,4'-Dichlorobenzophenone D1621
4,4'-Dichlorobenzoph enone / Polyvinyl chloride and polyethylene polymers, which have long been the mainstay of industrial polymers, are now making way for new high performance polymers. Engineering plastics are polymers that have various properties designed into the polymer. For example, some polymers are designed for thermal resistance, such as polyamide, and polycarbonate, which are widely used these days. The thermal resistance of a polymer is determined by the softening point, as the softening point rises with the increase in the material strength. To make improvements in the softening points and material strength, the super engineering plastics such as polysulfone, polyether sulfone, polyarylate and polyimide have been developed. The softening points of these polymers are all above 150 °C, and these utilized in materials of ï¬reman uniform and ulletproof vest, and so on. Active R&D is continuing to take place to further improve the performance.1) On the other hand, there have been active experiments in adding new functions to the polymers, such as the electrical, optical, medical and biological properties. For example, copolymers which are obtained by the polymerization of ï¬uorine containing monomers and variety of monomers have been utilized as photoresists, optical ï¬ber dressings, oxygen enrichment membranes, and membrane oxygenators. Polysilane has the maximum absorption in the ultraviolet region, and also has photosensitivity; therefore, it can be used as a positive type resist with excellent oxygen plasma resistance.2) Polylactic acid (PLA) has been commercialized as an environmentally-frie ndly polymer, being compatible with the natural environment. Furthermore, it can save fossil resources as it is made of biomass raw materials.3) Further broad applications are expected to be made with functional polymers, thus R&D in this ï¬ eld is highly promising. The page below shows a wide variety of monomers and intermediates as building blocks for functional polymers. These are surely useful for the development of novel polymers.

4,4'-Dichlorobenzophenone /
Polyvinyl chloride and polyethylene polymers, which have long been the mainstay of industrial polymers, are now making way for new high performance polymers. Engineering plastics are polymers that have various properties designed into the polymer. For example, some polymers are designed for thermal resistance, such as polyamide, and polycarbonate, which are widely used these days. The thermal resistance of a polymer is determined by the softening point, as the softening point rises with the increase in the material strength. To make improvements in the softening points and material strength, the super engineering plastics such as polysulfone, polyether sulfone, polyarylate and polyimide have been developed. The softening points of these polymers are all above 150 °C, and these utilized in materials of ï¬reman uniform and ulletproof vest, and so on. Active R&D is continuing to take place to further improve the performance.1)
On the other hand, there have been active experiments in adding new functions to the polymers, such as the electrical, optical, medical and biological properties. For example, copolymers which are obtained by the polymerization of ï¬uorine containing monomers and variety of monomers have been utilized as photoresists, optical ï¬ber dressings, oxygen enrichment membranes, and membrane oxygenators. Polysilane has the maximum absorption in the ultraviolet region, and also has photosensitivity; therefore, it can be used as a positive type resist with excellent oxygen plasma resistance.2) Polylactic acid (PLA) has been commercialized as an environmentally-friendly polymer, being compatible with the natural environment. Furthermore, it can save fossil resources as it is made of biomass raw materials.3)
Further broad applications are expected to be made with functional polymers, thus R&D in this ï¬ eld is highly promising. The page below shows a wide variety of monomers and intermediates as building blocks for functional polymers. These are surely useful for the development of novel polymers.

Supplier's Site
4,4'-Dichlorobenzophenone - D1621 - TCI America
Portland, OR, USA
4,4'-Dichlorobenzophenone
D1621
4,4'-Dichlorobenzophenone D1621
4,4'-Dichlorobenzoph enone / Photopolymerization initiators are used in many fields to generate photocurable composites. These composites are polymerized by irradiation with UV light and electron beam which leads to altered physical properties of the composites such as solubility, viscosity and adhesiveness. In particular, the phenomenon in which a liquid changes into a solid is most useful and is applied to surface-treating techniques in fields including paints, printing inks, dental materials, lithography, photoresist, etc. A growing number of intensive studies have been made for the development of improved properties for novel photopolymerization initiators.

4,4'-Dichlorobenzophenone /
Photopolymerization initiators are used in many fields to generate photocurable composites. These composites are polymerized by irradiation with UV light and electron beam which leads to altered physical properties of the composites such as solubility, viscosity and adhesiveness. In particular, the phenomenon in which a liquid changes into a solid is most useful and is applied to surface-treating techniques in fields including paints, printing inks, dental materials, lithography, photoresist, etc. A growing number of intensive studies have been made for the development of improved properties for novel photopolymerization initiators.

Supplier's Site

Technical Specifications

  TCI America
Product Category Chemical Additives and Agents
Product Number D1621
Product Name 4,4'-Dichlorobenzophenone
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