This application claims benefit under 35 USC 119 of Italian Application no. MI2004A 001988, filed on Oct. 20, 2004.
The present invention relates to memory devices and more particularly to a method and system for providing sensing circuitry in a nonvolatile memory device.
Nonvolatile memory devices are used to store data such that removal of the power to the device does not result in the data being lost. Instead, the data continues to be stored despite the removal of power.
The conventional row decoder 14 and conventional column decoder 16 are used to address memory cells within the array 12. The conventional column decoder 16, for example, routes data in the addressed columns of the conventional array 12 to the conventional sense amplification circuitry 18. The conventional sense amplification circuitry 18 typically includes a number of sense amplifiers (not explicitly shown) which read the data in the addressed columns. The conventional data multiplexer 22 drives the conventional I/O bus 26 to output the data. The conventional programming logic 24 receives from the conventional I/O bus 26 the data to be programmed and controls the high voltage switches 8. Thus, using the conventional memory device 10, data stored in the nonvolatile memory 10 can be read and stored.
Although the conventional memory 10 functions, one of ordinary skill in the art will readily recognize that the conventional, single bank memory 10 may be incapable of performing read-while-write operations or read-while-erase operations.
Although the conventional memory device 30 functions, one of ordinary skill in the art will readily recognize that there are issues with such an architecture. In particular, offsets in the sense circuitry 38 and 40 reduce the margin allowed for reading current from a particular cell in the array 32-i, as well as a reference current, are reduced. Thus, it may be more difficult to accurately determine the data stored in a cell. The coupling of the modify sense amplifier block 38 to the write bit line 47 and the sense amplifier read block 40 to the read bit line 48 may introduce coupling between the signal being output using the read bit line 47 and the data in arrays 32-i below the read bit line 47.
Use of the conventional memory device 50 avoids some of the issues of the conventional memory device 30. All sensing and addressing circuitry is local to each bank 60-i. Consequently, the offsets and coupling described above are avoided. However, the area occupied by the conventional memory 60 has increased significantly, which is undesirable. In addition, because the area consumed by the sensing circuitry 68-1 through 68-m, 70-1 through 70-m, 72-1 through 72-m, and 74-1 through 74-m, routing of sensing signals is made significantly more difficult.
Accordingly, what is needed is a mechanism for more efficiently performing read-while-write and read-while-erase operations while allowing the memory to consume less area. The present invention addresses such a need.
The present invention provides a method and system for providing a multi-bank memory is described. The method and system comprise providing a plurality of banks. Each of the plurality of banks includes at least one array including a plurality of memory cells and analog sensing circuitry. The method and system further comprise providing common digital sensing circuitry coupled with the plurality of banks.
According to the method and system disclosed herein, the present invention provides a multi-bank memory that has a wider reading margin while consuming less area.
The present invention relates to memory devices. The following description is presented to enable one of ordinary skill in the art to make and use the invention and is provided in the context of a patent application and its requirements. Various modifications to the preferred embodiments and the generic principles and features described herein will be readily apparent to those skilled in the art. Thus, the present invention is not intended to be limited to the embodiments shown, but is to be accorded the widest scope consistent with the principles and features described herein.
The present invention provides a method and system for providing a multi-bank memory is described. The method and system comprise providing a plurality of banks. Each of the plurality of banks includes at least one array including a plurality of memory cells and analog sensing circuitry. The method and system further comprise providing common digital sensing circuitry coupled with the plurality of banks.
The present invention will be described in terms of a particular memory having a particular number of banks. However, one of ordinary skill in the art will readily recognize that the method and system are consistent with the use of another memory having a different number of banks.
To more particularly describe the present invention, refer to
The memory device 100 also includes common digital sensing circuitry 130. The common digital sensing circuitry 130 includes programming logic 132 and data multiplexer 134. The programming logic 132 is connected to the high voltage switches 124-i for each memory bank 110-i through the line 128. The data multiplexer 134 is connected to the sense amplifier(s) 122-i for each memory bank 110-i through the line 126. The data multiplexer 134 drives the I/O bus 140. The programming logic 132 receives data that is to be programmed to the banks 110-1 through 110-n from the I/O bus 140. The programming logic 132 also controls the high voltages switches 124-i for each of the memory banks 110-i and receives read and verified data from the sense amplifier(s) 122-i from each of the memory banks 110-i.
In operation, the column decoder 118-i routes the addressed bit line to the sense amplifier(s) 122-i. The verified, digital output of the sense amplifier(s) 122-i is provided to the data multiplexer 134 via line(s) 126. The line(s) 126 carrying one or more signals preferably pass over the arrays 112-i and are shielded by at least one ground line (not shown) to prevent the signals on the line(s) 126 from coupling with the arrays 112-i. For modifying the memory 100, the programming logic 132 controls the high voltage switches 124-i. The control signals are provided via line(s) 128. In a preferred embodiment, the line(s) 128 also run over the arrays 112-i, close to the line(s) 126.
Using the memory device 100, read-while-write and read-while-erase operations can be performed. In addition, because the analog sensing circuitry 120-i is provided for each bank 110-i, any offsets between the reading and verifying operations are reduced. Consequently, a larger margin is allowed for current read from the array 112-i. Moreover, because only the analog sensing circuitry 120-i is provided for each bank 110-i, this larger margin is provided without consuming as much area as, for example, the conventional memory 50.
Thus, using the method 200, the multiple bank memory 100 can be read from and programmed. Thus, the memory 100 that consumes less silicon while reducing offsets between reading and verifying can be used.
A method and system for providing a multi-bank memory has been disclosed. The present invention has been described in accordance with the embodiments shown, and one of ordinary skill in the art will readily recognize that there could be variations to the embodiments, and any variations would be within the spirit and scope of the present invention. Software written according to the present invention is to be stored in some form of computer-readable medium, such as memory, CD-ROM or transmitted over a network, and executed by a processor. Consequently, a computer-readable medium is intended to include a computer readable signal which, for example, may be transmitted over a network. Accordingly, many modifications may be made by one of ordinary skill in the art without departing from the spirit and scope of the appended claims.
Number | Date | Country | Kind |
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MI2004A1988 | Oct 2004 | IT | national |
Number | Name | Date | Kind |
---|---|---|---|
5828616 | Bauer et al. | Oct 1998 | A |
6275407 | Otsuka | Aug 2001 | B1 |
6275417 | Lee et al. | Aug 2001 | B1 |
6323799 | Pasotti et al. | Nov 2001 | B1 |
6442644 | Gustavson et al. | Aug 2002 | B1 |
6697282 | Keeney et al. | Feb 2004 | B1 |
6922359 | Ooishi | Jul 2005 | B2 |
20030145151 | Matsushita et al. | Jul 2003 | A1 |
Number | Date | Country | |
---|---|---|---|
20060083097 A1 | Apr 2006 | US |