STYRENE-ACRYLIC EMULSION AND PREPARATION METHOD THEREOF, ANODE PLATE, SECONDARY BATTERY AND ELECTRIC DEVICE
The present application relates to a styrene-acrylic emulsion and a preparation method therefor, an anode plate, a secondary battery and an electric device. A Dv50 particle size of a latex particle in the styrene-acrylic emulsion is 350-900 nm, optionally 350-800 nm. The anode plate includes an anode current collector; and an anode active material layer disposed on at least one surface of the anode current collector, the anode active material layer includes a hard carbon material and a binder, the binder is derived from the above-mentioned styrene-acrylic emulsion.
1 . A styrene-acrylic emulsion, wherein a Dv50 particle size of a latex particle in the styrene-acrylic emulsion is 350-900 nm, optionally 350-800 nm.
2 . The styrene-acrylic emulsion as claimed in claim 1 , wherein the latex particle is a styrene acrylate copolymer, the styrene acrylate copolymer has a glass transition temperature in a range of 10-70° C., optionally 10-60° C.
3 . A preparation method for the styrene-acrylic emulsion as claimed in claim 1 , comprising the following steps:
preparing a pre-emulsion by mixing a portion of an emulsifier, a portion of an acrylate-based monomer, and a portion of a styrene-based monomer with water;
preparing a seed emulsion by mixing another portion of the emulsifier, another portion of the acrylate-based monomer, and another portion of the styrene-based monomer with water, with an addition of an initiator to initiate polymerization; and
adding the pre-emulsion to the seed emulsion dropwise and adding an initiator to carry out a polymerization reaction to produce a styrene-acrylic emulsion having the latex particle with the Dv50 particle size of 350-900 nm;
wherein, a total mass of the emulsifier is 0.7%-5% of a total mass of monomers for preparation; the monomers for the preparation comprise the acrylate-based monomer and the styrene-based monomer.
4 . The preparation method as claimed in claim 3 , wherein with respect to the total mass of the monomers for the preparation, the styrene-acrylic emulsion comprises 30%-80% by mass of the styrene-based monomer, 20%-70% by mass of the acrylate-based monomer and 0-10% by mass of a functional monomer;
optionally, the functional monomer is added in the step of preparing the pre-emulsion and/or the seed emulsion;
optionally, the functional monomer is at least one of an acrylic-based monomer, an organophosphate monomer and a fluorinated acrylate-based monomer.
5 . An anode plate, comprising:
an anode current collector; and
an anode active material layer disposed on at least one surface of the anode current collector, wherein the anode active material layer comprises a hard carbon material and a binder, the binder is derived from the styrene-acrylic emulsion as claimed in claim 1 .
6 . The anode plate as claimed in claim 5 , wherein components of the anode active material layer further comprise a conductive agent and a dispersant; the hard carbon material accounts for 85%-97% by mass, the styrene acrylate copolymer accounts for 1%-8% by mass, the conductive agent accounts for 0.3%-5% by mass, and the dispersant accounts for 0.5%-4% by mass of the anode active material layer.
7 . The anode plate as claimed in claim 5 , wherein, the anode active material layer has a coating weight of 2-13 mg/cm 2 .
8 . The anode plate as claimed in claim 5 , wherein a morphology of the hard carbon material is at least one of an irregular particle, a spherical particle and a quasi-spherical particle, optionally, the hard carbon material is an irregular particle.
9 . The anode plate as claimed in claim 5 , wherein the hard carbon material has a Dv50 particle size of 1-10 nm.
10 . The anode plate as claimed in claim 5 , wherein a morphology of the hard carbon material is an irregular particle and a binding force between the anode active material layer and the anode current collector is 10-40 N/m; a cohesive force of the anode active material layer is in a range of 150-800 N/m.
11 . The anode plate as claimed in claim 5 , wherein the hard carbon material is at least one of a spherical particle and a quasi-spherical particle, and a binding force between the anode active material layer and the anode current collector is 10-30 N/m; a cohesive force of the anode active material layer is in a range of 150-600 N/m.
12 . A secondary battery, comprising the anode plate as claimed in claim 5 .
13 . An electric device, comprising the secondary battery as claimed in claim 12 .