TCI America 2,2'-Bithiophene-5,5'-diboronic Acid Bis(pinacol) Ester B3363

Description
5,5'-Bis(4,4,5,5-tet ramethyl-1,3,2-dioxa borolan-2-yl)-2,2'-b ithiophene / 2,2'-Bithiophene-5,5 '-diboronic Acid Bis(pinacol) Ester In 1977, Shirakawa and co-workers reported that thin films of the semi-conducting polymer polyacetylene show a dramatic increase in electrical conductivity when doped with controlled amounts of iodine.1) Their reports triggered intensive R&D into the electrical conductivity of plastic materials. Studies of conducting polymers began and, as a result, many ï-conjugated polymers such as polypyrrole2), polythiophene3), polyaniline4) and polyphenylenevinylen e5) have been developed. Among these polymers, many of them have been utilized practically. One example is an electrolytic condenser using polypyrrole. This condenser has characteristic features such as being compact and lightweight, as well as having high-capacity and high-frequency compliance. These features have achieved a downsizing and weight-saving in electronic devices, and are utilized currently in some mobile phones. Thereby, conducting polymers are widely used for electronic devices vital to our everyday life. These and many other achievements were the reasons Shirakawa received to the Nobel Prize Award in 2000. Moreover, conducting polymers have been applied to solar cell materials. For instance, Kim et al. have reported the synthesis of the co-polymers 3 and 4, using 4,7-dibromo-2,1,3-be nzothiadiazole (1) and 4,7-dibromo-2,1,3-be nzoselenadiazole (2) as starting materials, respectively. According to their results, the bulk heterojunction solar cells composed of 3 or 4 with PC71BM give power conversion efficiencies of 1.12%6) and 1.34%7), respectively. Thus, further applications using conducting polymers can be fully expected in many areas.
Description
5,5'-Bis(4,4,5,5-tet ramethyl-1,3,2-dioxa borolan-2-yl)-2,2'-b ithiophene / 2,2'-Bithiophene-5,5 '-diboronic Acid Bis(pinacol) Ester In 1977, Shirakawa and co-workers reported that thin films of the semi-conducting polymer polyacetylene show a dramatic increase in electrical conductivity when doped with controlled amounts of iodine.1) Their reports triggered intensive R&D into the electrical conductivity of plastic materials. Studies of conducting polymers began and, as a result, many ï-conjugated polymers such as polypyrrole2), polythiophene3), polyaniline4) and polyphenylenevinylen e5) have been developed. Among these polymers, many of them have been utilized practically. One example is an electrolytic condenser using polypyrrole. This condenser has characteristic features such as being compact and lightweight, as well as having high-capacity and high-frequency compliance. These features have achieved a downsizing and weight-saving in electronic devices, and are utilized currently in some mobile phones. Thereby, conducting polymers are widely used for electronic devices vital to our everyday life. These and many other achievements were the reasons Shirakawa received to the Nobel Prize Award in 2000. Moreover, conducting polymers have been applied to solar cell materials. For instance, Kim et al. have reported the synthesis of the co-polymers 3 and 4, using 4,7-dibromo-2,1,3-be nzothiadiazole (1) and 4,7-dibromo-2,1,3-be nzoselenadiazole (2) as starting materials, respectively. According to their results, the bulk heterojunction solar cells composed of 3 or 4 with PC71BM give power conversion efficiencies of 1.12%6) and 1.34%7), respectively. Thus, further applications using conducting polymers can be fully expected in many areas.

Suppliers

Company
Product
Description
Supplier Links
2,2'-Bithiophene-5,5'-diboronic Acid Bis(pinacol) Ester - B3363 - TCI America
Portland, OR, USA
2,2'-Bithiophene-5,5'-diboronic Acid Bis(pinacol) Ester
B3363
2,2'-Bithiophene-5,5'-diboronic Acid Bis(pinacol) Ester B3363
5,5'-Bis(4,4,5,5-tet ramethyl-1,3,2-dioxa borolan-2-yl)-2,2'-b ithiophene / 2,2'-Bithiophene-5,5 '-diboronic Acid Bis(pinacol) Ester In 1977, Shirakawa and co-workers reported that thin films of the semi-conducting polymer polyacetylene show a dramatic increase in electrical conductivity when doped with controlled amounts of iodine.1) Their reports triggered intensive R&D into the electrical conductivity of plastic materials. Studies of conducting polymers began and, as a result, many ï-conjugated polymers such as polypyrrole2), polythiophene3), polyaniline4) and polyphenylenevinylen e5) have been developed. Among these polymers, many of them have been utilized practically. One example is an electrolytic condenser using polypyrrole. This condenser has characteristic features such as being compact and lightweight, as well as having high-capacity and high-frequency compliance. These features have achieved a downsizing and weight-saving in electronic devices, and are utilized currently in some mobile phones. Thereby, conducting polymers are widely used for electronic devices vital to our everyday life. These and many other achievements were the reasons Shirakawa received to the Nobel Prize Award in 2000. Moreover, conducting polymers have been applied to solar cell materials. For instance, Kim et al. have reported the synthesis of the co-polymers 3 and 4, using 4,7-dibromo-2,1,3-be nzothiadiazole (1) and 4,7-dibromo-2,1,3-be nzoselenadiazole (2) as starting materials, respectively. According to their results, the bulk heterojunction solar cells composed of 3 or 4 with PC71BM give power conversion efficiencies of 1.12%6) and 1.34%7), respectively. Thus, further applications using conducting polymers can be fully expected in many areas.

5,5'-Bis(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-2,2'-bithiophene / 2,2'-Bithiophene-5,5'-diboronic Acid Bis(pinacol) Ester
In 1977, Shirakawa and co-workers reported that thin films of the semi-conducting polymer polyacetylene show a dramatic increase in electrical conductivity when doped with controlled amounts of iodine.1) Their reports triggered intensive R&D into the electrical conductivity of plastic materials. Studies of conducting polymers began and, as a result, many Ï-conjugated polymers such as polypyrrole2), polythiophene3), polyaniline4) and polyphenylenevinylene5) have been developed. Among these polymers, many of them have been utilized practically. One example is an electrolytic condenser using polypyrrole. This condenser has characteristic features such as being compact and lightweight, as well as having high-capacity and high-frequency compliance. These features have achieved a downsizing and weight-saving in electronic devices, and are utilized currently in some mobile phones. Thereby, conducting polymers are widely used for electronic devices vital to our everyday life. These and many other achievements were the reasons Shirakawa received to the Nobel Prize Award in 2000.
Moreover, conducting polymers have been applied to solar cell materials. For instance, Kim et al. have reported the synthesis of the co-polymers 3 and 4, using 4,7-dibromo-2,1,3-benzothiadiazole (1) and 4,7-dibromo-2,1,3-benzoselenadiazole (2) as starting materials, respectively. According to their results, the bulk heterojunction solar cells composed of 3 or 4 with PC71BM give power conversion efficiencies of 1.12%6) and 1.34%7), respectively. Thus, further applications using conducting polymers can be fully expected in many areas.

Supplier's Site

Technical Specifications

  TCI America
Product Category Chemical Additives and Agents
Product Number B3363
Product Name 2,2'-Bithiophene-5,5'-diboronic Acid Bis(pinacol) Ester
Unlock Full Specs
to access all available technical data

Similar Products

EC-X100 ELUENT CONCENTRATE - 79325 - Hamilton Company
Specs
Function Buffer / Buffering Agent; Extractant / Ion Exchange Resin
Applications HPLC
Form & Features Liquids
View Details
Low Viscosity Polyaphaolefin (PAO) Base Stock - SpectraSyn™ 10 - ExxonMobil Chemical Company - Synthetic Base Stocks
ExxonMobil Chemical Company - Synthetic Base Stocks
Specs
Applications Oils & Fuels
Form & Features Liquids
View Details
LUMIFLON™ Fluoropolymer Resins - LF-810 - AGC Chemicals Americas, Inc.
AGC Chemicals Americas, Inc.
Specs
Applications Coatings or Paint; Industrial Maintenance, Transportation, Architectural, Alternative Energy
Form & Features Liquids
View Details
ExxonMobil™ HDPE Product Grades - ExxonMobil™ HDPE HD 9856B - ExxonMobil - Polyethylene Products
Specs
Applications Molding
View Details