Abstract:
Metalized plastic substrates and a manufacturing method thereof are provided herein. The method includes providing a plastic substrate made of a plastic material, in which a plurality of accelerator particles is dispersed. The accelerator particles are made of a compound selected from the group consisting of: CuFe 2 O 4-6 , Ca 0 . 25 Cu 0.75 TiO 3-² , and TiO 2-à , and ´, ², à is deemed to be 0.05‰¤´‰¤0.8, 0.05‰¤²‰¤0.5, and 0.05‰¤Ã‰¤1.0. The method includes the step of removing plastic material in a determined area of a surface of the plastic substrate. The method further includes plating the exposed surface of the plastic substrate to form a first metal layer, and then plating the first metal layer to form a second metal layer.
Abstract:
A Zr-based amorphous alloy represented by the general formula of: (Zr x Al y Cu z Ni 1-x-y-z ) 100-a-b Sc a Y b is provided. x, y, z are atomic percents, and a and b are atom molar ratios, in which: 0.45≤x≤0.60, 0.08≤y≤0.12, 0.25≤z≤0.35, 0
Abstract:
The present disclosure relates to a copper based microcrystalline alloy and a preparation method thereof, and an electronic product. In percentage by weight and based on the total amount of the copper based microcrystalline alloy, the copper based microcrystalline alloy includes: 30-60 wt% of Cu; 25-40 wt% of Mn; 4-6 wt% of Al; 10-17 wt% of Ni; 0.01-10 wt% of Si; and 0.001-0.03% of Be.
Abstract:
The present disclosure provides a metal compound. The metal compound is represented by a formula (I): Cu2AαB2-αO4-β (I). A contains at least one element selected from the groups 6 and 8 of the periodic table. B contains at least one element selected from the group 13 of the periodic table, 0
Abstract:
A ceramic and a preparation method therefor are provided. The ceramic includes a zirconia matrix, and an additive dispersed inside and on an outer surface of the zirconia matrix. The additive is an oxide including elements A and B, where A is selected from at least one of Ca, Sr, Ba, Y, and La, and B is selected from at least one of Cr, Mn, Fe, Co, and Ni.
Abstract:
The present disclosure provides a magnesium alloy and a preparation method and an application thereof. Based on the total weight of the magnesium alloy, the magnesium alloy includes 2-3.5 wt% of Ce, 0.01-0.2 wt% of R, 0.8-1.5 wt% of Mn, 0-0.01 wt% of Fe, 0-0.01 wt% of Cu, 0-0.01 wt% of Ni, 0-0.01 wt% of Co, 0-0.01 wt% of Sn, 0-0.01 wt% of Ca, and 94.74-97.19 wt% of Mg, wherein R is at least one selected from Al and Zn.