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901349

Sigma-Aldrich

Hexagonal boron nitride ink

greener alternative

for blade coating

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Synonym(s):
Hexagonal boron nitride dispersion, with ethyl lactate, hBN blade coatable ink, hBN dispersion
Empirical Formula (Hill Notation):
BN
CAS Number:
Molecular Weight:
24.82
MDL number:

form

dispersion

composition

Solid content, 20-40%

greener alternative product characteristics

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

color

white

particle size

≤0.3 μm

surface tension

28-32 dyn/cm

viscosity

200-450 cP (shear viscosity at 1000 s-1, 25 °C)

bp

152-156 °C (ethyl lactate)

density

0.9-1.1 g/mL at 25 °C

greener alternative category

InChI

1S/BN/c1-2

InChI key

PZNSFCLAULLKQX-UHFFFAOYSA-N

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General description

Curing condition: 250-350 °C, 20-30 min
We are committed to bringing you Greener Alternative Products, which adhere to one or more of The 12 Principles of Greener Chemistry. This product belongs to Enabling category of greener alternatives thus aligns with "Design for energy efficency". Boron nitride materials have interesting properties like large energy band gap, good resistance to oxidation, excellent thermal stability, thermal conductivity, chemical inertness, significance mechanical property and widespred applications. Click here for more information.

Signal Word

Danger

Hazard Statements

Hazard Classifications

Eye Dam. 1 - Flam. Liq. 3 - Skin Irrit. 2 - STOT SE 3

Target Organs

Respiratory system

Storage Class Code

3 - Flammable liquids

WGK

WGK 3

Flash Point(F)

116.6 °F

Flash Point(C)

47 °C

Regulatory Information

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Articles

Carbon-based Sustainable Organic Electronics (SOE) limit the use of critical elements and biodegrade at their end-of-life. This review offers insight on how structural and energy disorder in these materials influence device performance and includes evaluations of various transport models and their limitations.

Dr. Xiang’s and Maruyama’s review presents the most recent research activities on 1D vdWHs, including the candidate materials, the synthetic techniques, and characterization methods. The optoelectronic applications are discussed in detail for different constructions of the 1D vdWHs-based devices (FETs, sensors, LEDs, photovoltaic devices, and light detection). Some challenges and perspectives for future development and applications of 1D vdWHs are also proposed to conclude the review.

Professor Ebrahimi and Professor Robinson (Pennsylvania State University, USA) summarize recent advances in the synthesis of these 2D materials, resulting material properties, and related applications in biosensing of neurotransmitters, metabolites, proteins, nucleic acids, bacterial cells, and heavy metals.

Our team of scientists has experience in all areas of research including Life Science, Material Science, Chemical Synthesis, Chromatography, Analytical and many others.

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