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15567-09-6

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15567-09-6 Usage

Description

Butylamine Hydrobromide, also known as N-Butylammonium bromide (BABr), is a chemical compound commonly utilized in the field of material science, particularly for the development and optimization of perovskite-based devices. It is known for its ability to tune colloidal perovskite nanoplatelet structures, which is crucial for achieving desired absorption/emission energy and device performance in perovskite LEDs and solar cells.

Uses

Used in Solar Cell Industry:
Butylamine Hydrobromide is used as a precursor for synthesizing mixed cation or anion perovskites, which are essential for optimizing the band gap, carrier diffusion length, and power conversion efficiency of perovskite-based solar cells.
Used in Light Emitting Diode (LED) Industry:
Butylamine Hydrobromide is used as a precursor for tuning colloidal perovskite nanoplatelet structures, which is vital for achieving desired absorption/emission energy and device performance in perovskite LEDs.
Used in Material Science Research:
Butylamine Hydrobromide is used as a surfactant in the perovskite precursor solution, which dramatically constrains the growth of 3D perovskite grain. This results in the production of crystallites with dimensions as small as 10 nm and a film roughness of less than 1 nm, enhancing the overall quality and performance of perovskite-based devices.

Check Digit Verification of cas no

The CAS Registry Mumber 15567-09-6 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,5,5,6 and 7 respectively; the second part has 2 digits, 0 and 9 respectively.
Calculate Digit Verification of CAS Registry Number 15567-09:
(7*1)+(6*5)+(5*5)+(4*6)+(3*7)+(2*0)+(1*9)=116
116 % 10 = 6
So 15567-09-6 is a valid CAS Registry Number.
InChI:InChI=1/C4H11N.BrH/c1-2-3-4-5;/h2-5H2,1H3;1H

15567-09-6SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name butan-1-amine,hydrobromide

1.2 Other means of identification

Product number -
Other names n-butylamine hydrobromide

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:15567-09-6 SDS

15567-09-6Relevant articles and documents

Efficient Exciton to Dopant Energy Transfer in Mn2+-Doped (C4H9NH3)2PbBr4 Two-Dimensional (2D) Layered Perovskites

Biswas, Anupam,Bakthavatsalam, Rangarajan,Kundu, Janardan

, p. 7816 - 7825 (2017)

Three-dimensional ABX3 perovskite material has attracted immense interest and applications in optoelectronic devices, because of their enabling properties. Recently, Mn2+ doping directly into APbCl3-type three-dimensional (3D) nanocrystals, manifesting host-to-dopant energy transfer, have been reported for LED display applications. Strongly bound excitons in the doped system can enhance the dopant-carrier exchange interactions, leading to efficient energy transfer. Here, we report the simple and scalable synthesis of Mn2+-doped (C4H9NH3)2PbBr4 two-dimensional (2D) layered perovskites. The Mn2+-doped 2D perovskite shows enhanced energy transfer efficiency from the strongly bound excitons of the host material to the d electrons of Mn2+ ions, resulting in intense orange-yellow emission, which is due to spin-forbidden internal transition (4T1 → 6A1) with the highest quantum yield (Mn2+) of 37%. Because of this high quantum yield, stability in ambient atmosphere, and simplicity and scalability of the synthetic procedure, Mn2+-doped 2D perovskites could be beneficial as color-converting phosphor material and as energy down-shift coating for perovskite solar cells. The newly developed Mn2+-doped 2D perovskites can be a suitable material to tune dopant-exciton exchange interactions to further explore their magneto-optoelectronic properties.

A Ternary Solvent Method for Large-Sized Two-Dimensional Perovskites

Chen, Junnian,Gan, Lin,Zhuge, Fuwei,Li, Huiqiao,Song, Jizhong,Zeng, Haibo,Zhai, Tianyou

, p. 2390 - 2394 (2017)

Recent reports demonstrate that a two-dimensional (2D) structural characteristic can endow perovskites with both remarkable photoelectric conversion efficiency and high stability, but the synthesis of ultrathin 2D perovskites with large sizes by facile solution methods is still a challenge. Reported herein is the controlled growth of 2D (C4H9NH3)2PbBr4perovskites by a chlorobenzene-dimethylformide-acetonitrile ternary solvent method. The critical factors, including solvent volume ratio, crystallization temperature, and solvent polarity on the growth dynamics were systematically studied. Under optimum reaction condition, 2D (C4H9NH3)2PbBr4perovskites, with the largest lateral dimension of up to 40 μm and smallest thickness down to a few nanometers, were fabricated. Furthermore, various iodine doped 2D (C4H9NH3)2PbBrxI4?xperovskites were accessed to tune the optical properties rationally.

A new organic-inorganic bismuth halide crystal structure and quantum dot bearing long-chain alkylammonium cations

Wang, Jiandong,Li, Jia,Wang, Yong,Xiao, Wen-Jing,Yao, Xiang,Xu, Zi-Wen,Yao, Jianhua,Lin, Jian,Li, Wei-Shi

, p. 155 - 161 (2019/04/26)

It is report here a new family of organic-inorganic bismuth halides bearing a formula of A2BiX5, in which A is monovalent long-chain alkylammonium and X is halide. Two compounds, (BA)2BiBr5 (BA: C4H9NH3 +) and (OA)2BiBr5 (OA: C8H17NH3 +), have been synthesized and investigated by single crystal and powder X-ray diffractions, UV–vis absorption and fluorescence spectroscopies, and density functional theoretical calculations. An orthorhombic crystalline structure with a P212121 space group, which had not been reported for organobismuth halides before, was found existing in (OA)2BiBr5 single crystals. Besides bulk materials, the quantum dots (QDs) of (BA)2BiBr5 and (OA)2BiBr5 were prepared and demonstrated as blue emitters with photoluminescent quantum yields of 1.26% and 0.50%, respectively, after capping with oleic acid. Finally, mixed halides with various I/Br ratios were prepared and found to form certain solid solutions with homogeneous distributed I? and Br?. Upon tuning I/Br ratio, the absorption and emission bands of their QDs can be easily modulated.

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