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Key Documents

807613

Sigma-Aldrich

Zinc oxide nanoparticle ink

2.5 wt. %, viscosity 10 cP, work function -4.3eV

Synonym(s):

Avantama N-10-Jet, Nanograde N-10-Jet, ZnO ink, ZnO nanoparticle ink, zinc oxide dispersion, zinc oxide suspension

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About This Item

UNSPSC Code:
12352103
NACRES:
NA.23

Quality Level

form

dispersion

concentration

2.5 wt. % (crystalline ZnO in isopropanol and propylene glycol)

work function

-4.1--4.5 eV

color

translucent brownish

particle size

8-16 nm

viscosity

8-14 cP

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Application

ZnO nanoparticle ink is for inkjet printing for the use as electron transport layer in printed electronics. ZnO nanoparticle ink is universally applicable in normal and inverted architecture.

Preparation Note

  • Storage: In dark at room temperature.
  • Prior to application: Shake, ultrasonicate with sonic horn and (optionally) filter through 0.45μm PTFE filter.
  • Post-treatment: Annealing of deposited ZnO films at >120°C.

Legal Information

Product of Avantama Ltd.

Signal Word

Danger

Hazard Statements

Hazard Classifications

Aquatic Chronic 2 - Eye Irrit. 2 - Flam. Liq. 2 - STOT SE 3

Target Organs

Central nervous system

Storage Class Code

3 - Flammable liquids

WGK

WGK 2

Flash Point(F)

71.6 °F

Flash Point(C)

22 °C


Certificates of Analysis (COA)

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R P Warrell et al.
Annals of internal medicine, 113(11), 847-851 (1990-12-01)
To evaluate whether a brief course of treatment with gallium nitrate can reduce biochemical parameters of accelerated bone turnover in patients with advanced Paget disease. Unblinded trial, decreasing dose schedules of gallium nitrate. University hospital with primary orthopedic and metabolic
Mohammad Vaseem et al.
Journal of nanoscience and nanotechnology, 12(3), 2380-2386 (2012-07-05)
Zinc oxide (ZnO) nanoparticles were synthesized by ultrasonically-assisted solution process without using any surfactants. The as-synthesized spherical ZnO nanoparticles with diameter of 20 +/- 5 nm possessed crystalline nature with wurtzite hexagonal phase and showed a blue-shifted near band-edge ultra-violet

Articles

Professor Tokito and Professor Takeda share their new materials, device architecture design principles, and performance optimization protocols for printed and solution-processed, low-cost, highly flexible, organic electronic devices.

Recent progress in the area of solution-processed functional materials has led to the development of a variety of thin-film optoelectronic devices with significant promise in the industrial and consumer electronics fields.

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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