추천 제품
grade
purum p.a.
분석
≥96.0% (calc. as Ca3(PO4)2, KT)
형태
powder
손실
≤0.1% loss on ignition, 800 °C
음이온 미량물
chloride (Cl-): ≤500 mg/kg
sulfate (SO42-): ≤1000 mg/kg
양이온 미량물
Cd: ≤50 mg/kg
Co: ≤50 mg/kg
Cu: ≤50 mg/kg
Fe: ≤200 mg/kg
K: ≤500 mg/kg
Na: ≤1000 mg/kg
Ni: ≤50 mg/kg
Pb: ≤50 mg/kg
Zn: ≤50 mg/kg
SMILES string
[Ca++].[Ca++].[Ca++].[O-]P([O-])([O-])=O.[O-]P([O-])([O-])=O
InChI
1S/3Ca.2H3O4P/c;;;2*1-5(2,3)4/h;;;2*(H3,1,2,3,4)/q3*+2;;/p-6
InChI key
QORWJWZARLRLPR-UHFFFAOYSA-H
유사한 제품을 찾으십니까? 방문 제품 비교 안내
일반 설명
Calcium phosphate (tri calcium phosphate) is a colorless amorphous solid. Its pure form can be obtained by melting CaO with phosphorus (V) oxide at 1100°C. It is used as polish in toothpastes and also in making enamels and opaque glasses.
Calcium phosphate occurs naturally as the minerals: oxydapatit, voelicherite and whitlockite. It is mainly used for developing osteoconductive biomaterials for use as bone substitutes.
애플리케이션
Composite of calcium phosphate and a bioactive glass may be employed for the manufacture of customized implants, via 3D-printing process. Dense and homogeneous calcium phosphate coatings may be used for coating the metal implants.
Storage Class Code
11 - Combustible Solids
WGK
WGK 1
Flash Point (°F)
Not applicable
Flash Point (°C)
Not applicable
시험 성적서(COA)
제품의 로트/배치 번호를 입력하여 시험 성적서(COA)을 검색하십시오. 로트 및 배치 번호는 제품 라벨에 있는 ‘로트’ 또는 ‘배치’라는 용어 뒤에서 찾을 수 있습니다.
이미 열람한 고객
Calcium phosphate-based osteoinductive materials.
Chemical Reviews, 108(11), 4742-4753 (2008)
3D printing of bone substitute implants using calcium phosphate and bioactive glasses.
J. Eur. Ceram. Soc., 30(12), 2563-2563 (2010)
Journal of biomedical materials research, 56(2), 208-215 (2001-05-08)
A new biomimetic method for coating metal implants enables the fast formation of dense and homogeneous calcium phosphate coatings. Titanium alloy (Ti6Al4V) disks were coated with a thin, carbonated, amorphous calcium phosphate (ACP) by immersion in a saturated solution of
Calcium phosphates compounds in conjunction with hydrogel as carrier for BMP-2: a study on ectopic bone formation in rats.
Acta Biomaterialia, 7(8), 3042-3049 (2011)
Shock (Augusta, Ga.), 42(3), 234-238 (2014-07-01)
Remote ischemic preconditioning (RIPC) is an easily applicable method for protecting the heart against a subsequent ischemia and reperfusion (I/R) injury. However, the exact molecular mechanisms underlying RIPC are unknown. We examined the involvement of microRNAs (miRNAs) and in particular
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