IP Library › Granted Patent US 8,614,912
Granted Patent B2
US 8,614,912 · App. 13/869,086 · Granted Dec 24, 2013

Magnetic random access memory (MRAM)layout with uniform pattern

Inventors: Kangho Lee (San Diego, CA); Taehyun Kim (San Diego, CA); Xia Li (San Diego, CA); Jung Pill Kim (San Diego, CA); Seung H. Kang (San Diego, CA)
Assignee: QUALCOMM Incorporated
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Quick Facts
Patent No.
US 8,614,912
App. No.
13/869,086
Granted
Dec 24, 2013
Kind
B2
Abstract

A large scale memory array includes a uniform pattern of uniformly sized dummy bit cells and active bit cells. Sub-arrays within the large scale memory array are separated by the dummy bit cells. Signal distribution circuitry is formed with a width or height corresponding to the width or height of the dummy bit cells so that the signal distribution circuitry occupies the same footprint as the dummy bit cells without disrupting the uniform pattern across the large scale array. Edge dummy cells of a similar size or larger than the standard size bit cells may be placed around the edge of the large scale array to further reduce pattern loading affects.

Claims (41)

1. A memory array, comprising:

a pattern of adjacent uniformly sized bit cells; and

signal distribution circuitry occupying an area having a size coinciding with an integer multiple of a size of the uniformly sized bit cells.

2. The memory array of claim 1 , in which the adjacent uniformly sized bit cells comprise a plurality of active bit cells outside of a footprint of the signal distribution circuitry area.

3. The memory array of claim 2 , comprising:

a resistive memory element configured in each of the active bit cells.

4. The memory array of claim 2 , comprising:

a magnetic tunnel junction configured in each of the active bit cells.

5. The memory array of claim 2 , in which the adjacent uniformly sized bit cells comprise a plurality of dummy bit cells within the footprint of the signal distribution circuitry area.

6. The memory array of claim 2 , in which the signal distribution circuitry is coupled to the active bit cells.

7. The memory array of claim 1 , in which the signal distribution circuitry comprises:

word line strapping extending in a first dimension of the pattern.

8. The memory array of claim 1 , in which the signal distribution circuitry comprises:

at least one substrate tie extending in a second dimension of the pattern.

9. The memory array of claim 1 , further comprising a plurality of edge dummy cells extending around a perimeter of the memory array.

10. The memory array of claim 9 in which the edge dummy cells comprise a plurality of the uniformly sized bit cells.

11. The memory array of claim 9 in which the edge dummy cells comprise bit cells larger than the uniformly sized bit cells.

12. The memory array of claim 1 , integrated into a magnetic random access memory (MRAM).

13. The memory array of claim 1 , integrated into at least one of a mobile phone, a set top box, a music player, a video player, an entertainment unit, a navigation device, a computer, a hand-held personal communication systems (PCS) unit, a portable data unit, and a fixed location data unit.

14. A method, comprising:

forming a pattern of adjacent uniformly sized bit cells in a memory array; and

forming signal distribution circuitry in an area having a size coinciding with an integer multiple of a size of the uniformly sized bit cells.

15. The method of claim 14 , further comprising:

forming a plurality of edge dummy cells extending around a perimeter of the memory array.

16. The method of claim 15 comprising:

forming the edge dummy cells as a plurality of the uniformly sized bit cells.

17. The method of claim 15 comprising:

forming the edge dummy cells as bit cells larger than the uniformly sized bit cells.

18. The method of claim 14 , comprising:

integrating the memory array into a magnetic random access memory (MRAM).

19. The method of claim 14 , comprising:

integrating the memory array into at least one of a mobile phone, a set top box, a music player, a video player, an entertainment unit, a navigation device, a computer, a hand-held personal communication systems (PCS) unit, a portable data unit, and a fixed location data unit.

20. A method, comprising the steps of:

forming a pattern of adjacent uniformly sized bit cells in a memory array; and

forming signal distribution circuitry in an area having a size coinciding with an integer multiple of a size of the uniformly sized bit cells.

21. The method of claim 20 , further comprising the step of:

integrating the memory array into at least one of a mobile phone, a set top box, a music player, a video player, an entertainment unit, a navigation device, a computer, a hand-held personal communication systems (PCS) unit, a portable data unit, and a fixed location data unit.

22. An apparatus, comprising:

means for storing data, the data storing means being uniformly sized and arranged within a memory array; and

means for distributing signals, the signal distributing means occupying an area having a size coinciding with an integer multiple of a size of the uniformly sized data storing means.

23. The apparatus of claim 22 , integrated into at least one of a mobile phone, a set top box, a music player, a video player, an entertainment unit, a navigation device, a computer, a hand-held personal communication systems (PCS) unit, a portable data unit, and a fixed location data unit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2013
From: LEE, KANGHO; KIM, TAE HYUN; LI, XIA; KIM, JUNG PILL; KANG, SEUNG H.
To: QUALCOMM INCORPORATED
Reel/Frame 030274/0754 →
Continuity (2)
Continuation 12901074 · Oct 8, 2010
Related Publication 20130235639A1 · Sep 12, 2013