추천 제품
Quality Level
분석
98%
형태
solid
구성
Degree of hydration, 4-6
저장 온도
2-8°C
SMILES string
O.[Mn++].[O-][N+]([O-])=O.[O-][N+]([O-])=O
InChI
1S/Mn.2NO3.H2O/c;2*2-1(3)4;/h;;;1H2/q+2;2*-1;
InChI key
HBTFASPVVFSRRI-UHFFFAOYSA-N
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관련 카테고리
일반 설명
Manganese(II) nitrate hydrate is an inorganic salt highly soluble in water. It can be used as a source of manganese ions in the synthesis of various manganese-containing materials for batteries and supercapacitor applications. Additionally, it also serves as a safe, cost-effective, and efficient electrolyte for rapid energy storage applications.
애플리케이션
Manganese(II) nitrate hydrate can be used as:
- A precursor for the synthesis of manganese dioxide (MnO2), which is a common cathode material in primary alkaline batteries.
- A precursor in the synthesis of manganese dioxide (MnO2) for use in flexible micro supercapacitors. MnO2 exhibits high specific capacitance and excellent cycling stability, making it suitable for rapid energy storage applications.
- A manganese source in the colloidal solution combustion synthesis process to produce 3D δ-MnO2 nanostructures with ultra-large mesopores used in the fabrication of high-performance lithium-ion battery anodes.
- A precursor in the microwave-aided fabrication of calcium-substituted dysprosium perovskite manganite oxide nanocomposites (DyMnO3) for supercapacitor applications.
신호어
Warning
유해 및 위험 성명서
Hazard Classifications
Eye Irrit. 2 - Ox. Sol. 3 - Skin Irrit. 2 - STOT SE 3
표적 기관
Respiratory system
Storage Class Code
5.1B - Oxidizing hazardous materials
WGK
WGK 3
Flash Point (°F)
Not applicable
Flash Point (°C)
Not applicable
개인 보호 장비
Eyeshields, Gloves, type P3 (EN 143) respirator cartridges
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
Separation of rare earths from transition metals by liquid-liquid extraction from a molten salt hydrate to an ionic liquid phase
Dalton Transactions, 43(8), 3186-3195 (2014)
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Aluminum-air batteries are promising candidates for next-generation high-energy-density storage, but the inherent limitations hinder their practical use. Here, we show that silver nanoparticle-mediated silver manganate nanoplates are a highly active and chemically stable catalyst for oxygen reduction in alkaline media.
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