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Merck
CN

739316

Sigma-Aldrich

聚乙撑二氧噻吩-聚 苯乙烯磺酸盐

greener alternative

0.8% in H2O, conductive inkjet ink

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别名:
Orgacon IJ-1005, PEDOT:PSS, 聚(2,3-二氢噻吩并-1,4-二恶英)-聚(苯乙烯磺酸盐)
MDL编号:
UNSPSC代码:
12352103
NACRES:
NA.23

质量水平

形式

liquid

包含

1-5% Ethanol
5-10% Diethylene glycol

环保替代产品特性

Design for Energy Efficiency
Learn more about the Principles of Green Chemistry.

sustainability

Greener Alternative Product

浓度

0.8% in H2O

薄层电阻

110 Ω/sq

折射率

n20/D 1.340

pH值(酸碱度)

1.5-2.5

粘度

7-12 cP(22 °C)

密度

0.985 g/mL at 25 °C

环保替代产品分类

储存温度

2-8°C

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一般描述

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聚(3,4-乙撑二氧噻吩)-聚(苯乙烯磺酸盐)(PEDOT:PSS)是有机半导体,由共轭PEDOT掺杂作为反荷离子的磺化PSS。PEDOT负责传导机制,PSS形成水合胶体溶液。
PEDOT:PSS导电率高,抗氧化性好,适用于电磁屏蔽和噪声抑制。因此,形成的聚合物薄膜在可见光光谱中具有很高的透明度,甚至在近红外区域和近紫外区域也是如此,几乎可100%吸收波长从900 nm到2000 nm的光。从400nm到800nm无最大吸收。

应用

PEDOT:PSS作为本征导电聚合物,可涂覆在各种基底和纳米颗粒(如富勒烯(C60))上,低成本用于基于电子和光电的应用。 可通过PEDOT:PSS与聚乙二醇二丙烯酸酯制备导电水凝胶,或可应用于组织工程
从900nm到2000nm几乎100%吸收。从400nm到800nm无最大吸收。 导电聚合物混合。

法律信息

Agfa-Gevaert N.V. 产品
Orgacon is a trademark of Agfa-Gevaert N.V.

WGK

WGK 2

闪点(°F)

Not applicable

闪点(°C)

Not applicable


分析证书(COA)

输入产品批号来搜索 分析证书(COA) 。批号可以在产品标签上"批“ (Lot或Batch)字后找到。

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  1. Which document(s) contains shelf-life or expiration date information for a given product?

    If available for a given product, the recommended re-test date or the expiration date can be found on the Certificate of Analysis.

  2. How do I get lot-specific information or a Certificate of Analysis?

    The lot specific COA document can be found by entering the lot number above under the "Documents" section.

  3. How do I find price and availability?

    There are several ways to find pricing and availability for our products. Once you log onto our website, you will find the price and availability displayed on the product detail page. You can contact any of our Customer Sales and Service offices to receive a quote.  USA customers:  1-800-325-3010 or view local office numbers.

  4. What is the Department of Transportation shipping information for this product?

    Transportation information can be found in Section 14 of the product's (M)SDS.To access the shipping information for this material, use the link on the product detail page for the product. 

  5. Is a dried film of product 739316 (poly(3,4-Ethylenedioxythiophene)-poly(styrenesulfonate)) stable in air in a laboratory environment?

    Product 739316 (poly(3,4-Ethylenedioxythiophene)-poly(styrenesulfonate)) is susceptible to oxidation and photo degradation, however, our supplier has outlined that this concern is in reference to exposure to strong oxidizing agents and UV light in particular. The product when dried on target will be stable in a typical lab air environment, however, one will notice degradation and lack of conductivity when exposed to UV light, strong oxidizing conditions, heat, and or high humidity for extended periods of time.

  6. Why does product 739316, Orgacon IJ-1005, have a low pH?

    Orgacon IJ-1005 has a low pH because this ink is intended for use as an HIL (hole-injection layer) in OLED materials. Increasing pH would negatively affect the workfunction, but if you want to print on textiles to obtain conducting lines, you can slightly adjust the pH with amonia or an organic amine base. The ink is in water and typically needs to reach 130°C for drying.

  7. What can you tell me regarding the method of preparation of the PEDOT/PSS products, such as Products 768618 and 739316?

    The information on the molecular weights of the PEDOT and PSS used to make each batch is held as proprietary.The exact information on the relative amounts (by weight) of the PEDOT and PSS present in these polymers is also held as proprietary. There is a little more PSS than PEDOT; this is logical, since the formula weight for the monomeric equivalent in PSS (C7H6SO3) is a little higher than the formula weight for the monomeric equivalent in PEDOT (C6H4SO2).The solution, product 739316 is made in situ; it is not made from the dry pellets (product 768618).

  8. My question is not addressed here, how can I contact Technical Service for assistance?

    Ask a Scientist here.

Adrien Pierre et al.
Advanced materials (Deerfield Beach, Fla.), 26(32), 5722-5727 (2014-06-20)
A combination of surface energy-guided blade coating and inkjet printing is used to fabricate an all-printed high performance, high yield, and low variability organic thin film transistor (OTFT) array on a plastic substrate. Functional inks and printing processes were optimized
Mechanically robust, photopatternable conductive hydrogel composites.
Pal RK, et al.
Reactive and Functional Polymers, 120(4), 66-73 (2017)
New Conducting and Semiconducting Polymers for Organic Photovoltaics.
Sapp S and Luebben S
MRS Online Proceedings Library, 1270(4) (2010)
The Influence of PEDOT to PSS Ratio on the Optical Properties of PEDOT: PSS Thin Solid Films-Insight from Spectroscopic Ellipsometry.
Bednarski H, et al.
Acta Physica Polonica A, 130(5), 1242-1244 (2016)
EFFECTIVENESS OF ANNEALING TREATMENT AND POLYMER BLENDS ON IV CHARACTERISTSICS OF POLYMER SOLAR CELL.
Rosa E and Shobih S
Reaktor, 14(4), 261-266 (2014)

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