This application claims the priority benefit of French patent application number 0602376 filed on Mar. 17, 2006, titled “Semiconductor Device And Method For Implantation Of Doping Agents In A Channel”, which is hereby incorporated by reference in its entirety.
The invention relates to a semiconductor device and a method for implanting doping agents in a channel. The method may be particularly suitable for implanting doping agents or dopants in a channel region of a device made using Metal-Oxide Semiconductor (MOS) technology, such as a memory including an SRAM (Static Random Access Memory) type memory or a DRAM (Dynamic Random Access Memory) type memory, for example.
Progress made in technology for reducing the size of semiconductor devices introduces new constraints. For devices made using MOS technology, such as MOSFETS (Metal-Oxide Semiconductor Field-Effect Transistors), the reduction in the gate widths causes a reduction in the threshold voltage. It is sometimes necessary to have a high threshold voltage, for example in MOS transistors used in an SRAM or DRAM. This is usually done by increasing the channel doping levels in order to increase threshold voltages of these transistors. But one consequence is, for example, to increase leakage currents at drain-substrate and source-substrate junctions (referred to herein as drain (source)—substrate junctions). This increase in leakage currents may be critical for these devices, particularly for memories such as an SRAM and DRAM.
It is also known that supplementary implants of doping agents can be made in the substrate to increase the threshold voltages of these transistors, in addition to channel doping done during manufacture of a MOS type transistor, for example. One known method for implantation of doping agents in a device 1 made using MOS technology is shown in
In
After the gate 2 has been formed on the substrate 8, a second ionic implantation of N doping agents is made at the first region 9, forming a second N doped region 10 called a pocket. This is done by making the ionic implantation using ion beams 11 inclined at an angle of about 25° from normal to the plane defined by the face 12 of the substrate B.
The pocket 10 thus created is distributed in the channel 15, but also in the drain region 4 at a depth of about 10 to 15 nanometers below the surface 12, for example. This operation may be repeated four times by rotating by 90° each time normal to the plane defined by the face 12 of the substrate 8. Each time a new pocket 10 is created in the channel 15 and the source region 3 and the drain region 4. In
But the device 1 for which the channel 15 includes doping agents implanted using this method has high leakage currents, for example, about 30 to 40 pA. This is particularly at the drain (source)—substrate junction, and is due to the distribution of doping agents throughout the channel 15, and also in the source and drain regions 3, 4.
An object of the invention is to provide a semiconductor device in which doping agents are implanted using a method wherein drain (source)—substrate leakage currents are lower than prior art devices while maintaining a threshold voltage at least identical to the threshold voltage of the prior art devices.
To achieve this object, the semiconductor device includes a substrate of a first type of conductivity provided with at least one gate on one of its faces, and at least two doped regions of a second type of conductivity forming drain and source regions arranged in the substrate flush with the face of the substrate. The at least two doped regions may be on each side of a substrate region located under the gate for forming a channel between the drain and source regions. At least one region of doping agents of a second type of conductivity may be implanted only in the channel.
Thus, by making an implantation of doping agents only in the channel and not a first region of doping agents throughout the substrate, a more precise implantation of doping agents is made. This leads to a reduction of leakage currents at the drain (source)—substrate junctions.
Considering that doping agents are located more precisely, in other words only in the channel, the threshold voltage may remain approximately the same as the threshold voltage for the devices according to prior art, as in the case of a MOS transistor, for example. The device could be a MOS type device, a transistor or a memory such as an SRAM or a DRAM, for example.
Another aspect of the invention is directed to a method for implanting doping agents in a semiconductor device as described above, including at least one ionic implantation step in the channel, thus forming at least one region of doping agents of the second type of conductivity implanted only in the channel.
The ionic implantation step may be performed using at least one inclined ion beam, for example inclined from normal to the plane defined by the face of the substrate, by an angle equal to at least 40 degrees, or 45 degrees, or 50 degrees, or 55 degrees or a value higher than 55 degrees, or between 40 degrees or 45 degrees, and 50 degrees or 55 degrees or a value greater than 55 degrees.
The method for implanting doping agents in a semiconductor device may include a substrate of a first type of conductivity on which a plurality of devices is formed, each including at least one gate arranged on a face of the substrate. At least two doped regions of a second type of conductivity may be on the substrate, thus forming drain and source regions arranged in the substrate so as to be flush with the face of the substrate. The at least two doped regions may be on each side of a region of the substrate located under the gate, and form a channel between the drain and source regions. The method may include an ionic implantation step in at least one channel through at least one ion beam inclined from normal to the plane as defined by the face of the substrate by at least an angle for which the tangent is equal to the ratio between the height of a gate and the distance separating two adjacent gates.
With this doping agent implantation method, leakage currents at drain (source)—substrate junctions of the devices thus doped are reduced, while maintaining a high threshold voltage. This new method can also eliminate the implantation step of the first region of doping agents made using methods according to prior art.
The angle of inclination of the ion beam may be equal to at least 40 degrees, or 45 degrees, or 50 degrees, or 55 degrees, or a value greater than 55 degrees, or between 40 degrees or 45 degrees, and 50 degrees or 55 degrees or a value greater than 55 degrees.
Each of the devices formed on the substrate may be of the MOS type, or it may be a transistor. The semiconductor device may be a memory, such as an SRAM or DRAM.
The invention will be better understood after reading the description of example embodiments given purely for information, and are in no way limiting with reference to the appended drawings in which:
Identical, similar or equivalent parts of the different figures described below are marked with the same numeric references so as to facilitate cross-references between one figure and another. The different parts shown in the figures are not necessarily all shown at the same scale to make the figures more easily legible.
The device 100 in
In this example embodiment, the transistor 13 is an NMOS transistor, and the doping agents of the pocket 10 are of the N type. In this example embodiment, this pocket 10 is made flush with the face 12 of the substrate 8, under the gate 2a. In
Compared with device 1, the pocket 10 is located only in the channel region 15a and not in the drain region 4. Thus, despite the absence of the first region 9 of doping agents, the doping level of the channel 15a of the device 100 according to the invention is substantially the same as the doping level of the device 1 according to prior art. This level may be, for example, about 1018 atoms per cm3. The drain (source)—substrate leakage currents are reduced and the threshold voltage remains high due to the better position of doping agents in the channel 15a. For example, for a device according to prior art operating with a cell current of 19 μA, the leakage currents measured are about 30 pA. With a 19 μA cell current, the leakage currents measured on an SRAM made according to the invention are about 6 pA.
The implantation of the pocket 10 is made using an ion beam 11. The doping agents used are the same as those already known in prior art (for example, phosphorus for N doping agents and boron for P doping agents). The particular inclination of this beam 11 enables implantation of the pocket 10 only in the channel 15a. In
The device 100 could also simply be a MOS device such as a transistor, for example a MOSFET. In particular, the doping method may be used during manufacturing of a device such as an SRAM or DRAM, including a plurality of components including transistors made using the CMOS technology. During manufacturing of CMOS transistors, the first step is channel doping done by a vertical ionic implantation in the substrate.
The next step is that the gates are made by photolithography and are then etched. LDD (Lightly Doped Drain) implantations are then made to form source and drain regions. The next step is implantation of doping agents in the channels. Pockets can be implanted simultaneously in channels in all MOS transistors in the SRAM by a plurality of ion beams.
Transistors 13 and 14 in
Thus, over the entire SRAM 100, the gates close to a transistor prevent ion beams from doping the source and drain regions of the transistor for which the channel is doped. The ion beams can then only dope the gates or the channel of the transistor. In other words, gates close to the transistor form a shadow zone for the channel to be doped in the transistor.
In
In
The doping of the channel 15a may be made in two or four steps by making several ionic implantations, each time rotating by 90° or 180° from normal to the plane defined by the surface 12 of the substrate 8 so as to make doping of the channel uniform. Thus, the result is a channel 15a including two or four doping agent pockets 10.
The device 100 is then annealed to diffuse doping agents implanted throughout the channel 15a. Gates at a spacing from each other can be made differently on the same device. Thus, when performing the method according to the invention, different implantations can be obtained leading to different threshold voltages proportional to the spacings between the gates. This method may be applicable for all technologies, including technologies still under study (for example, in 45 nm).
Number | Date | Country | Kind |
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06 02376 | Mar 2006 | FR | national |
Number | Name | Date | Kind |
---|---|---|---|
3886003 | Takagi et al. | May 1975 | A |
4315781 | Henderson | Feb 1982 | A |
5516711 | Wang | May 1996 | A |
5536962 | Pfiester | Jul 1996 | A |
5591652 | Matsushita | Jan 1997 | A |
5789778 | Murai | Aug 1998 | A |
6051482 | Yang | Apr 2000 | A |
6100568 | Lage | Aug 2000 | A |
6207999 | Wu | Mar 2001 | B1 |
6255174 | Yu | Jul 2001 | B1 |
6329235 | Kuo | Dec 2001 | B1 |
6329250 | Sakui | Dec 2001 | B1 |
6621125 | Wang | Sep 2003 | B1 |
7176530 | Bulucea et al. | Feb 2007 | B1 |
20030073269 | Tran | Apr 2003 | A1 |
20030080390 | Tseng | May 2003 | A1 |
20040219724 | Park et al. | Nov 2004 | A1 |
20040248358 | Komori | Dec 2004 | A1 |
20050227440 | Ema et al. | Oct 2005 | A1 |
20080001203 | Ishihara | Jan 2008 | A1 |
20080012052 | Menut et al. | Jan 2008 | A1 |
Number | Date | Country | |
---|---|---|---|
20080012052 A1 | Jan 2008 | US |