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How is the lithium battery charged and what is the principle?

How is the lithium battery charged and what is the principle?

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  • Time of issue:2021-04-21
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(Summary description)Lithium-ion batteries are generally batteries that use lithium alloy metal oxide as the positive electrode material, graphite as the negative electrode material, and non-aqueous electrolyte.

How is the lithium battery charged and what is the principle?

(Summary description)Lithium-ion batteries are generally batteries that use lithium alloy metal oxide as the positive electrode material, graphite as the negative electrode material, and non-aqueous electrolyte.

  • Categories:Industry News
  • Author:
  • Origin:
  • Time of issue:2021-04-21
  • Views:0
Information
  Lithium-ion batteries are generally batteries that use lithium alloy metal oxide as the positive electrode material, graphite as the negative electrode material, and non-aqueous electrolyte. Almost all mobile phones we use are lithium batteries. At present, most of the popular electric vehicles on the market are powered by lithium iron phosphate batteries. How are lithium batteries charged and discharged?
  First of all, let’s take a look at the structure of lithium batteries. Lithium batteries are generally composed of positive electrodes, negative electrodes, electrolytes and separators. Our common mobile phone lithium batteries are square in daily life. The batteries in electric vehicle battery packs are generally round. Other shapes are also There are laminated and winding types. In addition to the positive and negative electrodes of the four contacts on a common mobile phone battery, the remaining contacts are simply used to detect (or monitor) various information of the mobile phone battery.
  The positive electrode of lithium battery is generally lithium manganese oxide or lithium cobalt oxide, and lithium nickel cobalt manganese oxide materials. Electric bicycles generally use lithium nickel cobalt manganese oxide (commonly known as ternary) or ternary + a small amount of lithium manganate; the negative electrode is generally active The material is graphite, or carbon with a similar graphite structure. The separator between the positive electrode and the negative electrode is a specially formed polymer film with a pore size that satisfies good ion permeability and at the same time has electronic insulation, which allows lithium ions to pass freely And electrons cannot pass. The electrolyte plays a role in transporting charges between the positive and negative electrodes. Generally, it is a carbonate-based solvent with lithium hexafluorophosphate dissolved in it, and a gel electrolyte is used for polymers.
  When a lithium battery is charged, the positive electrode releases lithium ions, and the lithium ions pass through the diaphragm through the electrolyte, move to the negative electrode, and combine with the electrons of the abdominal muscles. At this time, the chemical reaction of the positive electrode is LiCoO2=Li(1-x)CoO2 +xLi++xe- (electron), the chemical reaction on the negative electrode is 6C+xLi++xe- = LixC6. When a lithium battery is discharged, the movement of lithium ions is exactly the opposite. Lithium ions enter the electrolyte from the negative electrode, pass through the diaphragm and finally reach the positive electrode, while the electrons travel from the negative electrode to the positive electrode by the external circuit (the direction of electron movement is opposite to the direction of current), and the positive electrode The combination of lithium ions, this process can make the lithium battery output electrical energy.
  The charging process of lithium batteries is generally divided into three stages: trickle charging, constant current charging and constant voltage charging. Take a mobile phone battery as an example. When charging starts, the internal charging management chip first detects the voltage of the battery to be charged. If the voltage is lower than 3V, pre-charge is required. The charging current is 1/10 of the set current and the voltage rises to 3V. , Into the standard charging process. The standard charging process is: constant current charging with the set current, when the battery voltage rises to 4.20V, change to constant voltage charging and keep the charging voltage at 4.20V. At this time, the charging current gradually decreases, and when the current drops to 1/10 of the set charging current, charging ends. Generally, the output voltage of a mobile phone charger is 5V, and the charging management chip inside the mobile phone is responsible for reducing the voltage to 3.7V suitable for the battery of the mobile phone.
  Lithium batteries have relatively high energy. It has a high storage energy density, reaching 460-600Wh/kg, which is about 6-7 times that of lead-acid batteries; long service life, generally up to six years or more; high power endurance; low self-discharge rate. The application in daily life is getting wider and wider.

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06/28/2021

How to improve the low-temperature performance of lithium-ion batteries?

Lithium-ion batteries are widely used in consumer electronics, electric vehicles and energy storage due to their high specific energy and power density, long cycle life, and environmental friendliness. As the power source of new energy vehicles, lithium-ion batteries still have many problems in practical applications. For example, the energy density is significantly reduced under low temperature conditions, and the cycle life is also affected accordingly, which also severely limits the large-scale use of lithium-ion batteries. At present, researchers are still arguing about the important factors that cause the poor low-temperature performance of lithium-ion batteries, but the reasons are as follows: 1. The viscosity of the electrolyte increases at low temperatures and the conductivity decreases; 2. The membrane impedance and charge transfer impedance of the electrolyte/electrode interface increase; 3. The migration rate of lithium ions in the body of the active material is reduced. As a result, the electrode polarization is increased at low temperatures and the charge and discharge capacity is reduced. In addition, during low-temperature charging, especially during low-temperature high-rate charging, lithium metal precipitation and deposition will occur in the negative electrode. The deposited metal lithium is easy to irreversibly react with the electrolyte and consumes a large amount of electrolyte. At the same time, the thickness of the SEI film is further increased, resulting in The impedance of the negative electrode surface film of the battery is further increased, and the polarization of the battery is increased again, which will greatly destroy the low-temperature performance, cycle life and safety performance of the battery. This article reviews the research progress of low-temperature performance of lithium-ion batteries, and systematically analyzes the important limiting factors of low-temperature performance of lithium-ion batteries. From the three aspects of positive electrode, electrolyte and negative electrode, the modification methods that researchers have used to improve the low-temperature performance of the battery in recent years are discussed. 1. Cathode material The cathode material is one of the key materials for the manufacture of lithium-ion batteries, and its performance directly affects the various indicators of the battery, and the structure of the material has an important impact on the low-temperature performance of the lithium-ion battery. LiFepO4 with olivine structure has the advantages of high discharge specific capacity, stable discharge platform, stable structure, excellent cycle performance, and abundant raw materials. It is the mainstream cathode material for lithium-ion power lithium batteries. However, lithium iron phosphate belongs to the pnma space group, p occupies the tetrahedral position, the transition metal M occupies the octahedral position, and the Li atom forms a migration channel along the [010] axis in a one-dimensional direction. This one-dimensional ion channel causes the lithium ion only The orderly extraction or insertion in a single way seriously affects the diffusion ability of lithium ions in the material. Especially at low temperatures, the diffusion of lithium ions in the body is further hindered, resulting in an increase in impedance, resulting in more serious polarization and poor low-temperature performance. Nickel-cobalt-manganese-based LiNixCoyMn1-x-yO2 is a new type of solid solution material developed in recent years, which has a single-phase layered structure of α-NaFeO2 similar to LiCoO2. The material has important advantages such as high reversible specific capacity, good cycle stability, and moderate cost. It has also been successfully applied in the field of power lithium batteries, and its application scale has been rapidly developed. However, there are some problems that need to be solved urgently, such as low electronic conductivity and poor stability of large rates, especially as the nickel content increases, the high and low temperature performance of the material deteriorates. The lithium-rich manganese-based layered cathode material has a higher discharge specific capacity and is expected to become the next generation of lithium-ion battery cathode materials. However, there are many problems in the practical application of lithium-rich manganese bases: the first time the irreversible capacity is high, and the layered structure is easily transformed into the spinel structure during the charge and discharge process, which makes the Li+ diffusion channel blocked by the migrated transition metal ions. It causes serious capacity degradation, and poor ion and electronic conductivity, resulting in poor rate performance and low temperature performance. The mainstream ways to improve the ion diffusion performance of cathode materials at low temperatures are: 1. The method of surface coating the active material bo
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Time of issue:2021-08-27 16:19:06

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