IP Library › Granted Patent US 12,660,638
Granted Patent B2
US 12,660,638 · App. 18/410,619 · Granted Jun 16, 2026

Layered molded direct contact and dielectric structure and method for making the same

Inventors: Robin Davis (Vancouver, WA); Timothy L. Olson (Phoenix, AZ); Clifford Sandstrom (Richfield, MN); Craig Bishop (Scottsdale, AZ); Paul R. Hoffman (San Diego, CA)
Assignee: Deca Technologies USA, Inc.
H10W70/09H10W70/60H10W74/01H10W74/111
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Quick Facts
Patent No.
US 12,660,638
App. No.
18/410,619
Granted
Jun 16, 2026
Kind
B2
Abstract

A method of making a semiconductor assembly may include providing a semiconductor component disposed within a first encapsulant, the encapsulant being disposed around and contacting at least four side surfaces of the semiconductor component and disposed over frontside of the semiconductor component. A first layered structure may be formed as a build-up interconnect structure over the encapsulant and over the semiconductor component. The first layered structure may comprise a first conductive layer formed over the first encapsulant, a first dielectric formed over the first conductive layer, and a second encapsulant disposed over first conductive layer and over first dielectric. An upper surface of the second encapsulant may be planarized to create a flat surface on which to form additional structures, such as a second layered structure or a package interconnect.

Claims (62)

1 . A method of making a semiconductor assembly, comprising:

providing a semiconductor component disposed within a first encapsulant, the first encapsulant disposed around and contacting at least four side surfaces of the semiconductor component and disposed over a frontside of the semiconductor component; and

forming a first layered structure as a build-up interconnect structure over the first encapsulant and over the semiconductor component, wherein forming the first layered structure comprises:

forming a first conductive layer over the first encapsulant,

forming a first dielectric over the first conductive layer,

forming a second conductive layer over the first dielectric,

disposing a second encapsulant over the first and second conductive layers and over the first dielectric, wherein the second encapsulant is formed over, and directly contacting, the second conductive layer, and

planarizing an upper surface of the second encapsulant to create a flat surface on which to form additional structures,

wherein a portion of the second encapsulant forms a multi-layer encapsulant body that passes between portions of the first conductive layer and the first dielectric layer to directly contact the first encapsulant.

2 . The method of claim 1 , wherein the second encapsulant and a third encapsulant are formed without semiconductor chips disposed therein.

3 . The method of claim 1 ,

wherein the multi-layer encapsulant body comprises a portion of a third encapsulant that passes through at least a portion between portions of the second conductive layer and a second dielectric layer to directly contact the second encapsulant.

4 . A method of making a semiconductor assembly, comprising:

providing a semiconductor component disposed within a first encapsulant, the first encapsulant disposed around and contacting at least four side surfaces of the semiconductor component and disposed over a frontside of the semiconductor component; and

forming a first layered structure as a build-up interconnect structure after forming the first encapsulant, such that the first layered structure is disposed over and directly contacts the first encapsulant and is disposed over the semiconductor component, wherein forming the first layered structure comprises:

forming a first conductive layer over the first encapsulant,

forming a first dielectric over the first conductive layer,

disposing a second encapsulant over the first conductive layer and over the first dielectric, and

planarizing an upper surface of the second encapsulant to create a flat surface on which to form additional structures, wherein the second encapsulant passes between openings in the first dielectric to contact the first encapsulant, forming a multi-layer encapsulant body.

5 . The method of claim 4 , wherein an interstitial dielectric is disposed between the first encapsulant and the first conductive layer.

6 . The method of claim 4 , wherein the first conductive layer is formed directly on the first encapsulant without an interstitial dielectric.

7 . The method of claim 4 , further comprising:

forming a second layered structure as a build-up interconnect structure over the first layered structure and on the flat surface to improve a flatness of the second layered structure; and

wherein the first layered structure and the second layered structure each comprise a redistribution layer (RDL).

8 . The method of claim 4 , further comprising forming package interconnects over the first layered structure and over the flat surface, wherein the package interconnects comprise one or more of solder bumps, pins, a land grid array (LGA), or a ball grid array (BGA).

9 . The method of claim 4 , further comprising forming a second layered structure comprising:

a second conductive layer disposed over the first layered structure;

a second dielectric disposed over the second conductive layer; and

either a third encapsulant comprising a planarized upper surface disposed over the second conductive layer and over the second dielectric, or a third dielectric comprising vias disposed over the second conductive layer and over the second dielectric such that the second layered structure does not comprise encapsulant.

10 . The method of claim 4 , further comprising:

forming a conductive stump coupled to the first conductive layer;

forming the first dielectric such that a portion of the first dielectric is in contact with a lower portion of a sidewall of the conductive stump; and

disposing the second encapsulant such that a portion of the second encapsulant is in contact with an upper portion of the sidewall of the conductive stump.

11 . The method of claim 4 , wherein the semiconductor component comprises solderless interconnects formed over and coupled to a frontside of the semiconductor component.

12 . A method of making a semiconductor assembly, comprising:

providing a semiconductor component comprising conductive studs formed over and coupled to a frontside of the semiconductor component;

providing a first encapsulant disposed around and contacting at least four side surfaces of the semiconductor component, disposed over the frontside of the semiconductor component, and disposed so as to contact at least a portion of a side surface of the conductive studs;

forming a first layered structure as a build-up interconnect structure over the first encapsulant and over the semiconductor component, wherein forming the first layered structure comprises:

forming a first conductive layer comprising a redistribution layer (RDL) disposed over the first encapsulant and coupled with the conductive studs,

forming a first dielectric layer over the first conductive layer,

forming conductive stumps coupled to the first conductive layer and exposed with respect to the first dielectric layer,

disposing a second encapsulant over the first conductive layer, over the first dielectric layer, and over the conductive stumps, and

planarizing an upper surface of the second encapsulant to expose the conductive stumps and to create a flat upper surface on which to form additional structures;

forming a second layered structure as a build-up interconnect structure over the first layered structure and on the flat upper surface to improve a flatness of the second layered structure, wherein forming the second layered structure comprises:

forming a second conductive layer over the first layered structure,

forming a second dielectric layer disposed over the second conductive layer, and

forming a third encapsulant comprising a planarized upper surface disposed over the second conductive layer and over the second dielectric layer; and

wherein a portion of the second encapsulant forms a multi-layer encapsulant body that passes through at least a portion of the first conductive layer and the first dielectric layer to directly contact the first encapsulant, and

a portion of the third encapsulant forms a portion of the multi-layer encapsulant body and passes through at least a portion of the second conductive layer and the second dielectric layer to directly contact the second encapsulant; and

wherein the second encapsulant and the third encapsulant are formed without semiconductor chips disposed therein.

13 . The method of claim 12 , wherein the first conductive layer is formed directly on the first encapsulant without an interstitial dielectric layer.

14 . The method of claim 12 , further comprising forming package interconnects over the second layered structure and over the planarized upper surface, wherein the package interconnects comprise one or more of solder bumps, pins, a land grid array (LGA), or a ball grid array (BGA).

15 . The method of claim 12 , further comprising:

forming one or more additional conductive layers over the first dielectric layer, over the second dielectric layer, or over both the first dielectric layer and over the second dielectric layer; and

forming one or more of the second encapsulant and the third encapsulant over, and directly contacting, the one or more additional conductive layers.

16 . The method of claim 12 , wherein the conductive studs comprise solderless interconnects formed over and coupled to the frontside of the semiconductor component.

17 . The method of claim 12 , further comprising:

forming the first dielectric layer such that a portion of the first dielectric layer is in contact with a lower portion of a sidewall of the conductive stumps; and

disposing the second encapsulant such that a portion of the second encapsulant is in contact with an upper portion of the sidewall of the conductive stumps.

18 . The method of claim 12 , further comprising forming a backside layered structure over a backside of the semiconductor component.

19 . The method of claim 12 , wherein an interstitial dielectric layer is disposed between the first encapsulant and the first conductive layer.

20 . The method of claim 19 , wherein one or more of the first dielectric layer, the second dielectric layer, and the interstitial dielectric layer comprise polyimide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 18, 2024
From: DAVIS, ROBIN; OLSON, TIMOTHY L.; SANDSTROM, CLIFFORD; BISHOP, CRAIG; HOFFMAN, PAUL R.
To: DECA TECHNOLOGIES USA, INC.
Reel/Frame 066169/0880 →
Continuity (2)
Provisional Application 63480094 · Jan 16, 2023
Related Publication 20240243089A1 · Jul 18, 2024
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