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詳細
degree of sulfonation 70-110%
品質水準
形状
powder
分子量
20-80 kDa
色
white to beige
mp
>300 °C
官能基
sulfonic acid
ポリマー構造
shape: linear
SMILES記法
O=S(C1=CC=C(OC(C=C2)=CC=C2C(C)(C)C3=CC=C(OC(C(S(=O)(O[Na])=O)=C4)=CC=C4S(C5=CC=C(O[*])C(S(=O)(O[Na])=O)=C5)(=O)=O)C=C3)C=C1)(C6=CC=C(OC7=CC=C(C(C)(C)C8=CC=C([*])C=C8)C=C7)C=C6)=O
詳細
Sulfonated bisphenol-A-polysulfone is a specialized sulfonated aromatic polymer presented in powder form. This unique material, characterized by a high degree of sulfonation (90%) and a molecular weight ranging between 20-80 kDA, boasts distinct properties that set it apart for various applications in different industries. Its chemical structure, which features sulfonic acid groups attached to the aromatic backbone, imbues the polymer with remarkable thermal stability, chemical resistance, and high proton conductivity. These attributes make sulfonated bisphenol-A-polysulfone a valuable material for numerous applications, particularly in the energy and environmental sectors.
アプリケーション
One of the significant applications of sulfonated aromatic polymers is in proton exchange membranes (PEMs). PEMs are a critical component in fuel cells, which are devices that convert the chemical energy of a fuel (such as hydrogen) into electrical energy. The high proton conductivity of sulfonated aromatic polymers enables efficient transport of protons across the membrane, facilitating the electrochemical reactions within the fuel cell.
In addition to fuel cells, sulfonated aromatic polymers are also utilized in other energy-related applications. They are employed in redox flow batteries, which store energy by using electrolytes that undergo reversible redox reactions. The chemical stability and proton conductivity of these polymers contribute to the overall performance and longevity of such energy storage systems.
Moreover, sulfonated aromatic polymers find application in water treatment membranes. These membranes are used in processes like reverse osmosis, nanofiltration, and ultrafiltration to separate and purify water by selectively allowing the passage of water molecules while blocking contaminants and impurities. The chemical resistance of sulfonated aromatic polymers makes them suitable for handling harsh environments and maintaining high water permeability.
Furthermore, sulfonated aromatic polymers are explored for their potential in gas separation membranes, where they can be used to selectively separate gases such as hydrogen, carbon dioxide, and oxygen for various industrial processes.
Overall, the unique combination of properties exhibited by sulfonated aromatic polymers, including thermal stability, chemical resistance, and proton conductivity, makes them highly versatile and valuable for applications in fuel cells, energy storage, water treatment, and gas separation. Continued research and development in this area hold the potential for further advancements and innovations in these fields.
In addition to fuel cells, sulfonated aromatic polymers are also utilized in other energy-related applications. They are employed in redox flow batteries, which store energy by using electrolytes that undergo reversible redox reactions. The chemical stability and proton conductivity of these polymers contribute to the overall performance and longevity of such energy storage systems.
Moreover, sulfonated aromatic polymers find application in water treatment membranes. These membranes are used in processes like reverse osmosis, nanofiltration, and ultrafiltration to separate and purify water by selectively allowing the passage of water molecules while blocking contaminants and impurities. The chemical resistance of sulfonated aromatic polymers makes them suitable for handling harsh environments and maintaining high water permeability.
Furthermore, sulfonated aromatic polymers are explored for their potential in gas separation membranes, where they can be used to selectively separate gases such as hydrogen, carbon dioxide, and oxygen for various industrial processes.
Overall, the unique combination of properties exhibited by sulfonated aromatic polymers, including thermal stability, chemical resistance, and proton conductivity, makes them highly versatile and valuable for applications in fuel cells, energy storage, water treatment, and gas separation. Continued research and development in this area hold the potential for further advancements and innovations in these fields.
関連製品
製品番号
詳細
価格
保管分類コード
11 - Combustible Solids
WGK
WGK 3
引火点(°F)
Not applicable
引火点(℃)
Not applicable
適用法令
試験研究用途を考慮した関連法令を主に挙げております。化学物質以外については、一部の情報のみ提供しています。 製品を安全かつ合法的に使用することは、使用者の義務です。最新情報により修正される場合があります。WEBの反映には時間を要することがあるため、適宜SDSをご参照ください。
Jan Code
939757-BULK:
939757-2G:
939757-VAR:
試験成績書(COA)
製品のロット番号・バッチ番号を入力して、試験成績書(COA) を検索できます。ロット番号・バッチ番号は、製品ラベルに「Lot」または「Batch」に続いて記載されています。
Sulfonated aromatic hydrocarbon polymers as proton exchange membranes for fuel cells
Polymer, 50(23), 5341-5357 (2009)
Polymers, 13(11) (2021-06-03)
The purpose of this study was to investigate the effect of the aliphatic moiety in the sulfonated poly(arylene ether sulfone) (SPAES) backbone. A new monomer (4,4'-dihydroxy-1,6-diphenoxyhexane) was synthesized and polymerized with other monomers to obtain partially alkylated SPAESs. According to
ライフサイエンス、有機合成、材料科学、クロマトグラフィー、分析など、あらゆる分野の研究に経験のあるメンバーがおります。.
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