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Merck
모든 사진(1)

주요 문서

483591

Sigma-Aldrich

Diamond

synthetic monocrystalline powder, ≤1 μm

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About This Item

실험식(Hill 표기법):
C
CAS Number:
Molecular Weight:
12.01
EC Number:
MDL number:
UNSPSC 코드:
12352103
NACRES:
NA.23

양식

synthetic monocrystalline powder

입자 크기

≤1 μm

density

3.5 g/mL at 25 °C (lit.)

응용 분야

battery manufacturing

유사한 제품을 찾으십니까? 방문 제품 비교 안내

애플리케이션

Monocrystalline diamond particles internalized in human endothelial cells have potential applications in drug delivery.

Storage Class Code

11 - Combustible Solids

WGK

nwg

Flash Point (°F)

Not applicable

Flash Point (°C)

Not applicable

개인 보호 장비

Eyeshields, Gloves, type N95 (US)


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시험 성적서(COA)

Lot/Batch Number

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문서 라이브러리에서 최근에 구매한 제품에 대한 문서를 찾아보세요.

문서 라이브러리 방문

Micron-sized diamond particles are internalized by endothelial cells.
Walkowiak B, et al.
Diamond and Related Materials, 18, 651-656 (2009)
Pontus Forsberg et al.
Optics express, 21(3), 2693-2700 (2013-03-14)
Control of the sidewall angle of diamond microstructures was achieved by varying the gas mixture, bias power and mask shape during inductively coupled plasma etching. Different etch mechanisms were responsible for the angle of the lower and upper part of
P Pereira Nogueira et al.
The Journal of clinical pediatric dentistry, 37(1), 53-57 (2013-01-25)
The aim of the present study was to evaluate hybrid layer thickness of primary molars sectioned with diamond, carbide and ultrasonic CVD burs. The occlusal enamel surfaces often molars were removed and superficial dentin was exposed. Three standardized cavities were
H Pinto et al.
Journal of nanoscience and nanotechnology, 12(11), 8589-8593 (2013-02-21)
We have investigated using density functional theory the effect of fluorine termination of a (001) diamond surface on the electronic energy levels of an NV- centre buried beneath the surface. We find that, like OH termination, fluorine passivates the surface
Richard W Bowman et al.
Physical review letters, 110(9), 095902-095902 (2013-03-19)
Diamond anvil cells allow the behavior of materials to be studied at pressures up to hundreds of gigapascals in a small and convenient instrument. However, physical access to the sample is impossible once it is pressurized. We show that optical

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