EP2575166A2

Chips having rear contacts connected by through vias to front contacts

Abstract

A microelectronic unit is provided in which front (102) and rear (114) surfaces of a semiconductor element (100) may define a thin region (105) which has a first thickness and a thicker region having a thickness at least about twice the first thickness. A semiconductor device (112) may be present at the front surface, with a plurality of first conductive contacts (116) at the front surface connected to the device. A plurality of conductive vias (125) may extend from the rear surface through the thin region (105) of the semiconductor element to the first conductive contacts (116). A plurality of second conductive contacts (134) can be exposed at an exterior of the semiconductor element (100). A plurality of conductive traces (126) may connect the second conductive contacts (134) to the conductive vias (125).

EP2575166A2, drawing sheet 1
Sheet 1 of 26

Term

Projected expiry 26 February 2028.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

14 claims: 6 independent, 8 dependent

  1. 1
    A method of manufacturing a microelectronic unit, the method comprising:providing a semiconductor element (100) having a front surface (102), a rear surface (114) remote from the front surface, the front and rear surfaces defining a thin region (105) having a first thickness (162) and a thicker region having a second thickness (160) being at least about twice the first thickness, the semiconductor element including a semiconductor device (112), a plurality of first conductive contacts (116) at the front surface 102 connected to the device (112), each having a surface facing away from the front surface of the semiconductor element;forming via openings extending between the rear surface of the semiconductor element and the first conductive contacts by depositing a photoimageable layer onto the rear surface of the semiconductor element, patterning the photoimageable layer to form mask openings in registration with the first conductive contacts, and applying an etch process to remove semiconductor material exposed by the mask openings such that surfaces of the first conductive contacts are exposed within the via openings;forming a plurality of conductive vias (125) in the via openings extending from the rear surface (114) of the semiconductor element through the thin region (105) of the semiconductor element to the first conductive contacts (116), the conductive vias including a metal contacting the surfaces of said first conductive contacts;forming a plurality of second conductive contacts (128, 132 or 134) exposed at an exterior of the semiconductor element;and forming a plurality of conductive traces (126) connecting the second conductive contacts to the conductive vias.
  2. 7
    A method as claimed in any preceding claim, further comprising providing a dielectric layer overlying the rear surface of the semiconductor element, wherein the second conductive contacts (128, 132 or 134) and conductive traces may overlie the dielectric layer.
  3. 8
    A method as claimed in any preceding claim, further comprising providing a cover element (104) overlying at least a portion of the front surface (102) at which the semiconductor device is disposed.
  4. 9
    A method of manufacturing a camera module, the method comprising:manufacturing a microelectronic unit in accordance with any of claims 1 to 7 such that the semiconductor device (112) includes an imaging area;providing a cover element (104) overlying at least a portion of the front surface (102) at which the semiconductor device is disposed;and mounting an optical unit having an optical element to the cover element in registration with the imaging area.
  5. 10
    A method of manufacturing an assembly, the method comprising:manufacturing a microelectronic unit in accordance with any of claims 1 to 7;providing a compliant dielectric layer overlying the rear surface of the semiconductor element;and providing a circuit panel having terminals joined to the second conductive contacts, wherein a product of a modulus of elasticity of the dielectric layer and a thickness of the dielectric layer is sufficient to compensate for thermal expansion mismatch between the microelectronic unit and the circuit panel.
  6. 11
    A microelectronic unit, comprising:a semiconductor element (100) having a front surface (102), a rear surface (114) remote from the front surface, the front and rear surfaces defining a thin region (105) having a first thickness (162) and a thicker region having a second thickness (160) being at least about twice the first thickness, the semiconductor element including a semiconductor device (112), a plurality of first conductive contacts (116) at the front surface (102) connected to the device (112), each having a surface facing away from the front surface of the semiconductor element, the semiconductor element further including a plurality of conductive vias (125) extending from the rear surface (114) of the semiconductor element through the thin region (105) of the semiconductor element to the first conductive contacts (116), the conductive vias including a metal contacting the surfaces of said first conductive contacts, the conductive vias formed within via openings extending between the rear surface of the semiconductor element and the first conductive contacts, the via openings formed by depositing a photoimageable layer onto the rear surface of the semiconductor element and patterning the photoimageable layer to form mask openings in registration with the first conductive contacts, and applying an etch process to portions of the rear surface of the semiconductor element exposed within the mask openings to remove the semiconductor material, such that surfaces of the first conductive contacts are exposed within the via openings;a plurality of second conductive contacts (128, 132 or 134) exposed at an exterior of the semiconductor element;and a plurality of conductive traces 126 connecting the second conductive contacts to the conductive vias.