1581771-50-7 Usage
Uses
Used in Organic Semiconductors:
TPTTF is used as a component in organic semiconductors for its ability to form charge-transfer complexes with various electron acceptors, which enhances the performance of these materials.
Used in Solar Cells:
In the solar cell industry, TPTTF is used as a component in organic photovoltaics due to its potential to improve the efficiency and performance of these devices.
Used in Conductive Materials:
TPTTF is utilized as a component in conductive materials, taking advantage of its electronic properties to enhance conductivity in various applications.
Used in Molecular Electronics:
TPTTF is used as a building block in molecular electronics, where its ability to form charge-transfer complexes is crucial for the development of novel electronic devices and components.
Used in Organic Light-Emitting Diodes (OLEDs):
In the display industry, TPTTF is used in the development of organic light-emitting diodes (OLEDs), where its optical properties contribute to improved display performance.
Used in Self-Assembled Monolayers:
TPTTF serves as a building block for self-assembled monolayers, which have applications in nanotechnology, surface science, and the development of new materials with tailored properties.
Check Digit Verification of cas no
The CAS Registry Mumber 1581771-50-7 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,5,8,1,7,7 and 1 respectively; the second part has 2 digits, 5 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 1581771-50:
(9*1)+(8*5)+(7*8)+(6*1)+(5*7)+(4*7)+(3*1)+(2*5)+(1*0)=187
187 % 10 = 7
So 1581771-50-7 is a valid CAS Registry Number.
1581771-50-7Relevant academic research and scientific papers
Vajpayee, Vaishali,Bivaud, Sebastien,Goeb, Sebastien,Croue, Vincent,Allain, Magali,Popp, Brian V.,Garci, Amine,Therrien, Bruno,Salle, Marc
, p. 1651 - 1658 (2014)
A series of arene ruthenium architectures have been prepared from coordination-driven self-assembly using dinuclear p-cymene ruthenium acceptors and π-donating tetratopic tetrapyridyl-tetrathiafulvalene donor ligands. The synthetic strategy, based on a geometric interaction approach, leads to four electroactive metalla-assemblies, 1-4 (one molecular cube and three metallaplates), that were characterized by NMR, ESI-MS, X-ray diffraction, and cyclic voltammetry. Rationalization of their formation discrepancy was completed by DFT calculations supported by structural features of their constituting TTF and Ru-complex components. Metalla-architectures possessing electron-rich cores (3, cis-4, and trans-4) interact strongly with picric acid (PA) to yield cocrystallized products, PA + metalla-assemblies, confirmed by single-crystal X-ray structure analyses.