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线性分子式:
LiNO3
化学文摘社编号:
分子量:
68.95
NACRES:
NA.55
PubChem Substance ID:
UNSPSC Code:
12352302
EC Number:
232-218-9
MDL number:
Form:
powder or crystals
Solubility:
water: soluble(lit.)
产品名称
硝酸锂, ReagentPlus®
InChI key
IIPYXGDZVMZOAP-UHFFFAOYSA-N
InChI
1S/Li.NO3/c;2-1(3)4/q+1;-1
SMILES string
[Li+].[O-][N+]([O-])=O
product line
ReagentPlus®
form
powder or crystals
greener alternative product characteristics
Design for Energy Efficiency
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sustainability
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concentration
9-11% Li (ICP)
pH
7-9 (20 °C, 50 g/L)
mp
264 °C (lit.)
solubility
water: soluble(lit.)
greener alternative category
Quality Level
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Application
硝酸锂用于:
- 在Li-O2电池中作为电解质和氧化还原介质。
- 制备LiNO3/天然磷酸盐(NP)催化剂。这种LiNO3/NP催化剂可用于合成查尔酮
- 作为充电Li/O2电池中可再生SEI(固体-电解质界面)稳定剂。
General description
硝酸锂(LiNO3)是一种无机化合物,用于可充电Li-S(锂-硫)电池的电解质添加剂。LiNO3 可作为氧化剂。
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Legal Information
ReagentPlus is a registered trademark of Merck KGaA, Darmstadt, Germany
signalword
Warning
hcodes
Hazard Classifications
Acute Tox. 4 Oral - Eye Irrit. 2 - Ox. Sol. 3
存储类别
5.1B - Oxidizing hazardous materials
wgk
WGK 1
flash_point_f
Not applicable
flash_point_c
Not applicable
法规信息
危险化学品
此项目有
Dramatic activity enhancement of natural phosphate catalyst by lithium nitrate. An efficient synthesis of chalcones.
Sebti S, et al.
Catalysis Communications, 3(8), 335-339 (2002)
Vapor-liquid equilibrium of ammonia+ lithium nitrate+ water and ammonia+ lithium nitrate solutions from (293.15 to 353.15) K.
Libotean S, et al.
Journal of Chemical and Engineering Data, 52(3), 1050-1055 (2007)
Eagleson M.
Concise Encyclopedia Chemistry, 605-605 (1994)
Wesley Walker et al.
Journal of the American Chemical Society, 135(6), 2076-2079 (2013-01-31)
A major challenge in the development of rechargeable Li-O(2) batteries is the identification of electrolyte materials that are stable in the operating environment of the O(2) electrode. Straight-chain alkyl amides are one of the few classes of polar, aprotic solvents
Sung-Ho Shin et al.
ACS nano, 8(10), 10844-10850 (2014-09-30)
We present a method to develop high performance flexible piezoelectric nanogenerators (NGs) by employing Li-doped ZnO nanowires (NWs). We synthesized Li-doped ZnO NWs and adopted them to replace intrinsic ZnO NWs with a relatively low piezoelectric coefficient. When we exploited
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