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Merck
CN

707473

小能隙富勒烯-哌啶酸乙酯

greener alternative

≥95%

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线性分子式:
C60(C8H15NO2)x
NACRES:
NA.23
UNSPSC Code:
12352103
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产品名称

小能隙富勒烯-哌啶酸乙酯, ≥95%

assay

≥95%

form

solid

mol wt

average Mv ~2100

composition

fullerenes, 50%

greener alternative product characteristics

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

sustainability

Greener Alternative Product

impurities

~5% o-Dichlorobenzene

mp

>300 °C

solubility

organic solvents: soluble
toluene: soluble

greener alternative category

Legal Information

TDA Research, Inc. 产品,美国专利 6,517,799 和 6,303,016。

General description

Insoluble small gap fullerenes can be extracted into organic solvents by simple chemical redox process.
Small gap fullerene-ethyl nipecotate are higher order fullerenes with low HOMO-LUMO gaps. These allotropes of carbon are also known as metallofullerenes. They are kinetically unstable and are considered as insoluble small band gap structures. Small gap fullerene-ethyl nipecotate can be extracted into organic solvents by a chemical redox processes.
We are committed to bringing you Greener Alternative Products, which adhere to one or more of The 12 Principles of Greener Chemistry. This product has been enhanced for energy efficiency. Find details here.

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Hazard Classifications

Aquatic Chronic 2 - Eye Irrit. 2 - Skin Irrit. 2 - Skin Sens. 1 - STOT SE 3

target_organs

Respiratory system

存储类别

13 - Non Combustible Solids

wgk

WGK 3

flash_point_f

Not applicable

flash_point_c

Not applicable

ppe

dust mask type N95 (US), Eyeshields, Faceshields, Gloves

法规信息

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历史批次信息供参考:

分析证书(COA)

Lot/Batch Number

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Small-bandgap endohedral metallofullerenes in high yield and purity.
Stevenson S, et al.
Nature, 401(6748), 55-55 (1999)
Isolation and properties of small-bandgap fullerenes.
Diener MD and Alford JM
Nature, 393(6686), 668-668 (1998)
Chemical redox recovery of giant, small-gap and other fullerenes
Raebiger, J.W.; Alford, J.M.; Bolskar, R.D.; Diener, M.D.
Carbon, 49, 37-46 (2011)

商品

Find various photovoltaic and bioscience-based applications of fullerenes.

SWCNTs show promise in FETs, solar cells, and photodetectors due to their ultrafast charge transport mobility.

Solution-processed organic photovoltaic devices (OPVs) have emerged as a promising clean energy generating technology due to their ease of fabrication, potential to enable low-cost manufacturing via printing or coating techniques, and ability to be incorporated onto light weight, flexible substrates.

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