9-(2-乙基己基)-N,N,N,N-四(4-甲氧基苯基)-9H-咔唑-2,7-二胺),EH44;≥99% (HPLC)

别名:9-(2-Ethylhexyl)-N,N,N,N-tetrakis(4-methoxyphenyl)- 9H-carbazole-2,7-diamine); Empirical Formula (Hill Notation): C48H51N3O4 CAS号: 1879076-81-9 分子量: 733.94
制造商品牌: 西格玛 Sigma-Aldrich
货号(SKU): 906395
CAS号: 1879076-81-9
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说明

EH44 是一种咔唑衍生物,用作钙钛矿太阳能电池 (PSC) 中的界面层、空穴传输层和接触层。使用 EH44 可以提高设备的性能和使用寿命。 EH44 是一种不含 Li+ 的疏水空穴传输材料 (HTM),可以消除由于 Li+ 迁移引起的降解,抑制由于吸湿引起的降解,并且在制造的 PSC 中具有长期稳定性。

EH44 是一种不含 Li+ 的疏水空穴传输材料 (HTM)。它消除了由于锂离子迁移引起的降解,抑制了由于吸湿引起的降解,因此有望在制造的钙钛矿太阳能电池中实现长期稳定性。

在以下设备配置中使用 EH44 作为 HTM:SnO2/PAL/EH44/MoOx /Al,通过使用最先进的 HTM Spiro-OMeTAD,不仅产生了与创纪录的 PCE 相当的高功率转换效率 (PCE) ,但最重要的是,器件稳定性大大提高:即使在光(包括紫外线)、氧气和水分的综合应力下,使用 EH44 作为空穴传输层的钙钛矿太阳能电池在 1,000 小时后仍保持其峰值效率的 94%在环境空气条件下(相对湿度为 10-20%)连续非封装操作。当在惰性气氛中进行稳定性测试时,在 1,500 小时的连续运行过程中仅观察到约 2% 的降解。

请注意,在上述结果中,双(三氟甲磺酰)亚胺银(产品 668001)用于氧化 EH44 并产生 EH44+TFSI-。然后将 EH44+TFSI- 与纯 EH44 以各种比例混合以控制电导率(和光学如果需要,透明度)并优化设备性能。钙钛矿太阳能电池使用 14wt% EH44+TFSI- 和 25 mg/ml 4-叔丁基吡啶(产品 142379)掺杂的约 60 nm 厚度的 EH44 层实现了令人印象深刻的 18.5% 的功率转换效率 (PCE),其中与使用 spiro-OMeTAD (19%) 作为 HTM 的设备性能相当。
与 spiro-OMETAD 的 PCE 相比,EH44 可用作具有高功率转换效率 (PCE) 的 HTM。它用于 PSC,在运行 1000 小时后保持 94% 的峰值效率。

一般描述

EH44 is a carbazole derivative used as interfacial, hole transporting and contact layer in perovskite solar cell (PSC). Using EH44 can increase the performance and the lifetime of the devices. EH44 is a Li+ free, hydrophobic hole transporting material (HTM) which can eliminate degradation due to Li+ migration, supresse degradation due to moisture absorption and has long-term stability in fabricated PSC.

应用

EH44 is a Li+ free, hydrophobic hole transporting material (HTM). It eliminates degradation due to Li+ migration, supresses degradation due to moisture absorption and thus showed promise for achieving long-term stability in fabricated perovskite solar cells.

Using EH44 as HTM in a device configuration of: SnO2/PAL/EH44/MoOx /Al, not only generated high power conversion efficiency (PCE) comparable to the record PCE by using the state-of-the-art-HTM Spiro-OMeTAD, but also most importantly showed greatly improved device stability: even under the combined stresses of light (including ultraviolet light), oxygen and moisture, perovskite solar cells using EH44 as hole transporting layer were shown to retain 94% of their peak efficiency despite 1,000 hours of continuous unencapsulated operation in ambient air conditions (relative humidity of 10-20%). When stability tests were conducted in an inert atmosphere, degradation of only ∼2% over the course of 1,500 hours of continuous operation was observed.

Note that in the above mentioned result, silver bis(trifluoromethanesulfonyl)imide (product 668001) was used to oxidize EH44 and yield EH44+TFSI.EH44+TFSI was then blended with neat EH44 at various ratios to control the conductivity (and optical transparency if desired) and optimize the device performance. The impressive power conversion efficiency (PCE) of 18.5% was achieved for a perovskite solar cell using EH44 layers of ∼60 nm thickness doped with 14wt% EH44+TFSI and 25 mg/ml 4-tert-butylpyridine (product 142379), which is comparable to device performance using spiro-OMeTAD (19%) as the HTM.
EH44 can be used as an HTM with a high power conversion efficiency (PCE) in comparison to PCE of spiro-OMETAD. It was used in PSC with 94% retention of peak efficiency after 1000 hours of operation.
 
 

属性

描述

Band gap in film: 2.99eV, calculated from UV-vis
Band gap in solution: 3.00eV, calculated from UV-vis

测定

≥99% (HPLC)

形式

powder

溶解性

insoluble (Methanol and Hexane)
soluble (DMSO, THF, Toluene, o-Xylene, Anisole, Chloroform, Chlorobenzene, and 1,2-Dichlorobenzene)

轨道能量

HOMO - 4.85 eV 

SMILES string

CCC(CCCC)CN1C2=CC(N(C3=CC=C(OC)C=C3)C4=CC=C(OC)C=C4)=CC=C2C5=CC=C(N(C6=CC=C(OC)C=C6)C7=CC=C(OC)C=C7)C=C15

 

安全信息

储存分类代码

11 - Combustible Solids

WGK

WGK 3

商品规格
属性名称属性值
储存温度 Storage temp.常温阴凉避光
全球实时库存 Availability √美国St. Louis ≥ 50 | 欧洲Eur. ≥ 12 | 東京Tokyo ≥ 20 | 香港与北京 ≥ 50