Electrolyte additive for improving low-temperature performance of water-based battery and electrolyte

文档序号:1189860 发布日期:2020-08-28 浏览:10次 中文

阅读说明:本技术 一种提高水系电池低温性能的电解液添加剂及电解液 (Electrolyte additive for improving low-temperature performance of water-based battery and electrolyte ) 是由 陶占良 年庆舜 孙田将 郑仕兵 史金强 陈军 李海霞 于 2020-05-28 设计创作,主要内容包括:本发明公开了一种提高水系电池低温性能的电解液添加剂及电解液,属于电池技术领域。所述添加剂为含氢键受体的有机溶剂。将该添加剂加入水系电池电解液中,能够显著降低电解液的凝固点并提高电解液低温条件下的离子电导率,提升水系电池低温下的放电容量和库仑效率。本发明可使水系电池具有良好的常温、低温及高温充放电性能,适于工业化生产,在大规模储能领域具有潜在应用前景。(The invention discloses an electrolyte additive for improving the low-temperature performance of a water-based battery and an electrolyte, and belongs to the technical field of batteries. The additive is an organic solvent containing a hydrogen bond acceptor. The additive is added into the electrolyte of the water-based battery, so that the freezing point of the electrolyte can be obviously reduced, the ionic conductivity of the electrolyte under the low-temperature condition can be improved, and the discharge capacity and the coulomb efficiency of the water-based battery under the low temperature can be improved. The invention can lead the water system battery to have good normal temperature, low temperature and high temperature charge and discharge performance, is suitable for industrialized production and has potential application prospect in the field of large-scale energy storage.)

1. An electrolyte additive for improving the low-temperature performance of an aqueous battery is characterized in that the additive is an organic solvent containing a hydrogen bond acceptor.

2. The electrolyte additive for improving the low-temperature performance of the aqueous battery according to claim 1, wherein the organic solvent containing the hydrogen bond acceptor is an amide group-containing, hydroxyl group-containing, carbonyl group-containing or sulfoxide group-containing organic solvent.

3. The electrolyte additive for improving the low-temperature performance of the water-based battery according to claim 2, wherein the organic solvent containing the hydrogen bond acceptor comprises one or more of formamide, ethylene glycol, glycerol, acetone, dimethyl sulfoxide, diethyl sulfoxide or dipropyl sulfoxide.

4. An electrolyte for improving low-temperature performance of an aqueous battery, comprising the additive according to any one of claims 1 to 3.

5. The electrolyte for improving low-temperature performance of an aqueous battery according to claim 4, wherein the electrolyte comprises solvent water, an electrolyte salt and the additive according to claim 4.

6. The electrolyte for improving the low-temperature performance of the water-based battery according to claim 5, wherein the electrolyte salt is any one or more of the following:

lithium salts, including Li2SO4、LiClO4、LiNO3LiCl or CF3LiO3S; sodium salt, including NaClO4、NaNO3、NaCl、Na2SO4Or CF3NaO3S; potassium salts, including K2SO4、KNO3Or KCl; zinc salts, including ZnSO4、Zn(NO3)2、Zn(CH3OO)2Or Zn (CF)3SO3)2(ii) a The concentration of the electrolyte salt is 0.5-2 mol/L.

7. The electrolyte for improving the low-temperature performance of an aqueous battery according to any one of claims 4 to 6, wherein the molar fraction of the electrolyte additive to the total solution is 0.1 to 0.9.

Technical Field

The invention belongs to the technical field of water-based batteries, and particularly relates to an electrolyte additive for improving the low-temperature performance of a water-based battery.

Background

The large-scale energy storage is a technical foundation for people to effectively utilize renewable energy sources such as wind energy, solar energy and the like to construct global energy Internet, and the energy storage technology and industry are highly valued by various countries. Research and development of various novel electrochemical energy storage technologies are rapid, and mainly comprise secondary batteries, electrochemical super capacitors, fuel cells and the like. The electrochemical energy storage system is divided into an organic system and a water system according to the electrolyte, namely the adopted electrolyte is the organic electrolyte and the aqueous solution. The chemical power supply adopting the organic system has the safety problem due to the use of the organic electrolyte, the cost is higher, and the pollution to the environment is larger. And the water system chemical power source can well compensate the defects.

The water-based battery has the advantages of safety, environmental protection, abundant resources, low cost and the like, and is widely concerned by researchers in recent years. However, the development of water-based batteries has many disadvantages, and a common problem is that water-based batteries lose most of their capacity and power when exposed to low temperatures. Electrolyte coagulation and insufficient ionic conductivity are considered to be the main causes of this. Therefore, lowering the freezing point of the electrolyte and improving the ionic conductivity are of great importance to the practical application of the water-based battery, and have great significance to the efficient utilization of clean energy and the construction of a novel energy society.

Disclosure of Invention

The invention aims to solve the problem that the existing water system battery system can not be used at ultralow temperature (lower than-20 ℃), and provides an electrolyte additive for improving the low-temperature performance of the water system battery, so that the freezing point of the electrolyte is obviously reduced, and the battery has good electrochemical performance at ultralow temperature (lower than-20 ℃).

Technical scheme of the invention

The electrolyte additive is an organic solvent containing hydrogen bond acceptors such as amide groups, hydroxyl groups, carbonyl groups, sulfoxide groups and the like, and comprises one or more of formamide, ethylene glycol, glycerol, acetone, dimethyl sulfoxide, diethyl sulfoxide and dipropyl sulfoxide.

The invention also provides an electrolyte for improving the low-temperature performance of the water-based battery, which comprises the following components: solvent water, electrolyte salt and the above additive;

the mole fraction of the electrolyte additive in the total solution is 0.1-0.9.

The electrolyte salt in the electrolyte is Li2SO4、LiClO4、LiNO3LiCl or CF3LiO3Lithium salts of S, etc., NaClO4、NaNO3、NaCl、Na2SO4Or CF3NaO3S, etc. sodium salt, K2SO4、KNO3Or potassium salt of KCl, ZnSO4、Zn(NO3)2、Zn(CH3OO)2Or Zn (CF)3SO3)2And one or more of zinc salts. The concentration of the electrolyte salt is 0.5-2 mol/L.

The invention has the advantages and beneficial effects that:

the invention can obviously reduce the freezing point of the electrolyte by adding the additive which can form hydrogen bonds with water molecules. The water system electrolyte still has higher conductivity at ultralow temperature (lower than-20 ℃), so that the normal operation of the charge-discharge cycle of the battery is ensured, the discharge capacity and the coulombic efficiency of the battery under the low-temperature extreme condition are greatly improved, and the electrochemical performance of the water system battery at low temperature is improved. The aqueous electrolyte disclosed by the invention is resistant to ultralow temperature, has good high-temperature performance, is simple and feasible in scheme, is suitable for industrial production, and has potential application prospects in the field of large-scale energy storage.

Drawings

FIG. 1 is the freezing point of the aqueous electrolyte solvent in example 1;

FIG. 2 is a charge and discharge curve diagram of the aqueous lithium ion full cell in example 2 at room temperature (25 ℃), -10 ℃, -20 ℃, -30 ℃, -40 ℃, -50 ℃, -55 ℃ and-60 ℃ at a rate of 1C;

FIG. 3 is a graph showing the charge and discharge curves of the aqueous sodium ion full cell of example 2 at room temperature (25 ℃) and-50 ℃ at a magnification of 0.5C;

FIG. 4 is a charge/discharge curve of the aqueous potassium ion full cell in example 3 at room temperature (25 ℃ C.) and-50 ℃ C. at a magnification of 0.5C.

Detailed Description

In order that the invention may be more readily understood, reference will now be made to the following description taken in conjunction with the accompanying drawings. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein.

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