The present invention relates to accelerated particle and high energy radiation sensor. In particular, but not exclusively, the present invention is concerned with the application of active pixel technology to charged particle detection including but not limited to accelerated electrons.
Through the 1990's active pixel sensors have been developed for visible imaging as an alternative to CCD technology. Such active pixel sensors are generally made using standard VLSI technology, usually CMOS, and consist of a photodiode integrated in a pixel together with an amplifier which buffers the charge signals generated by the photodiode. However, in the past the applications of active pixel sensors in visible imaging have been limited by their poor fill factor. That is to say only a small fraction of the pixel surface area was sensitive to incident light as a large proportion of each pixel's surface area was given over to readout circuitry. This limited the resolution of active pixel sensors arrays and rendered this technology unsuited to many imaging applications, specifically tracking applications.
In U.S. Pat. No. 6,225,670 an active pixel sensor structure is described for detecting electromagnetic radiation with a significantly increased fill factor.
A similar structure has also been described in a paper entitled “A monolithic active pixel sensor for charged particle tracking and imaging using standard VLSI CMOS technology” by R Turchetta et al in Nuclear Instruments & Methods in Physics Research A 458 (2001) 677-689. In this paper the possibility of using such a structure in the tracking of minimum ionising particles (MIPS) and single photon imaging is considered.
In the field of transmission electron microscopy (TEM) which employ accelerated electron beams, to date wet films continue to be used as the detectors for transmission electron microscopes in circumstances where high resolution images are required. The proposed replacement of wet films with a scintillator in combination with a fibre optic bundle and a CCD array to generate digital images has met with only limited success partly because of the smearing effects which can significantly limit the resolution of CCD detector systems. These problems are discussed in WO99/66529 which proposes deceleration of the electrons between the sample and the scintillator in an attempt to improve the resolution of the images obtained.
The present invention seeks to provide a monolithic sensor which is capable of withstanding incident accelerated particles and high energy radiation. The present invention also seeks to provide a monolithic sensor which is capable of detecting single quanta of incident accelerated particles and high energy of radiation with high efficiency, in some case substantially 100%. As such, the present invention seeks to provide a detector that is suitable for providing spatially resolved detection of charged particles that have been subjected to an externally induced acceleration for example, but not limited to, in electron microscopy.
In accordance with the present invention there is provided a monolithic sensor adapted for use in the detection of accelerated particles or high energy radiation, the sensor comprising a charge carrier transport layer, the charge carrier transport layer having dopants of a first conductivity type; at least one first well having dopants of the first conductivity type at a higher concentration than the charge carrier transport layer and having integrated therein readout circuitry; at least one second well having dopants of a second conductivity type forming a first junction with the charge carrier transport layer whereby when charge carriers are generated in the charge carrier transport layer, the charge carriers move towards and are collected at the junction between the charge carrier transport layer and the second well to generate a signal and wherein the sensor is capable of withstanding bombardment by accelerated particles or high energy radiation.
Preferably, the readout circuitry for the sensor comprises one of the following:
More preferably, the sensor further comprising a third well having dopants of the second conductivity type which is located beneath the first well or adjacent the first well in which case an isolation layer is also provided.
The present invention has the advantage that the monolithic sensor can be manufactured using conventional CMOS technology and of achieving a substantially 100% fill factor. Furthermore, the depth of the charge carrier transport layer within the sensor and the fact that the sensor can be fully depleted, that is to say a drift field can be established in the entire sensitive volume, enables the sensor to be capable of withstanding bombardment from accelerated particles and high energy radiation, for example radiation doses in excess of 15 kRads, and charge collection can be greatly speed up in comparison to conventional ionising radiation detectors.
Thus, the sensor is particularly suited for use in electron microscopy and related analysis techniques including but not limited to: electron energy loss spectroscopy (EELS), low energy electron diffraction (LEED) and x-ray photoelectron spectroscopy.
Hence, in a further aspect the present invention provides an electron microscope comprising an evacuated housing containing an electron source, electron beam acceleration and confinement means, at least one electron beam focusing system and a detector having first and second opposed surfaces, the detector comprising an array of monolithic sensors as described above.
Embodiments of the present invention will now be described by way of example only with reference to the accompanying drawings, in which:
Wherever reference is made in the following description to n or p type material or doping it is to be understood that complementary structures generated by changing the n for p (and p for n) type material and doping, electrons for holes (and holes for electrons) and changing the biasing polarities are also envisaged. Also, like reference numerals have been used to identify structural elements common to the different active pixel sensor structures described below.
A first monolithic structure for an active pixel sensor fabricated using CMOS technology adapted for the detection of accelerated particles is shown in
A second monolithic structure for an active pixel sensor adapted for the detection of accelerated particles and high energy radiation is shown in
It will, of course, be understood that the extent of any depletion region established in the epi-layer 11 is dependent upon the doping levels and the applied bias. For example, following basic semiconductor theory for a typical microelectronic device having a doping level of 1015 cm−3 and an applied bias of 3 V, the width of the depletion region would be approximately 6 μm. In the case of the monolithic structure of
A further alternative active pixel sensor structure is illustrated in
The structure of
Turning to
All of the structures described above rely upon collection junctions for signal collection and each of the structures has a multiplicity of junctions. These junctions can be used to detect different types of accelerated particles or high energy radiation either by sequentially taking images for accelerated particles, such as electrons, having different energies and time multiplexing the output signals or by combining structures together in the same pixel to simultaneously take images for accelerated particles at different energies.
It will of course be understood that small areas of the epi-layer may be screened by metallization on top of the sensor. To address this it is envisaged that the p++ substrate 10 may be partially or fully removed and the sensor illuminated from the rear.
The active pixel sensors described above have improved radiation hardness which makes it capable of withstanding the bombardment of accelerated charged particles such as electrons and high energy radiation. In particular the present invention is capable of sustained bombardment from radiation having wavelengths equal to or shorter than 100 nm and is capable of withstanding radiation doses of 15 kRads or more. This is because as the sensor is capable of being fully depleted, the speed of collection of the charge carriers in the epi layer is reduced and this reduces signal degradation associated with the minority carrier lifetime. Moreover, it is intended that the invention be implemented using conventional VLSI CMOS technology active pixel sensor arrays which renders a resolution of around 1-5 microns possible. Hence, the sensor of the present invention may be used in radiation harsh environment, e.g. decommissioning of nuclear plants, or in satellites, e.g. for star trackers.
A particular application for an array of active pixel sensors as described above is as the detector for a transmission electron microscope (TEM). An electron transmission microscope having an array of integrated CMOS technology sensors positioned at the focal plane of the microscope is shown in
The active pixel array 37 may be inverted so that the accelerated electron beam is incident on the rear substrate surface of the array and to ensure penetration of the electrons to the epitaxial layer 11, the substrate 10 may be back thinned to a thickness that permits penetration of low energy electrons. Preferably, the thickness of the substrate is reduced to a thickness of 100 microns or less. Ideally, the substrate is wholly removed leaving the rear surface of the epitaxial layer 11 exposed. Alternatively, an array of windows may be etched into the rear surface of the substrate 10 or into the front isolation layer covering the front surface of the sensor.
As a result of the high fill factor and performance characteristics of the active pixel array described above image resolutions below 5 microns can be achieved, indeed between 1 and 5 microns resolution can be achieved, which is an improvement over currently available technologies. With a reduction in pixel size and/or by implementing analogue readout of the signal with respect to individual incident electrons, sub-micron resolution is possible. This makes an electron microscope incorporating a detector having a CMOS sensor array including monolithically integrated CMOS transistors particularly but not exclusively suitable for use in the imaging of biological samples such as proteins and cell samples.
In addition to the use of the active pixel sensor array in an electron microscope, the array is suitable for use in detecting higher energy radiation including x-rays and gamma rays. Again in order to maximise the fill factor of the sensor array, the array may be reversed so that it is the rear of the substrate that is exposed to the radiation. Additionally, the rear or the front surface of the substrate may be coated in radiation sensitive material such as caesium iodide or mercuric iodide.
It will, of course, be appreciated that the present invention is not limited to the details of the structures of the active pixel sensors described herein nor is it limited to the details of the structure of the transmission electron microscope described herein. Changes and variations to those structures are envisaged whilst remaining within the scope of the present invention as claimed.
Number | Date | Country | Kind |
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0310602.8 | May 2003 | GB | national |
0319825.6 | Aug 2003 | GB | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/GB2004/002014 | 5/7/2004 | WO | 00 | 11/8/2005 |
Publishing Document | Publishing Date | Country | Kind |
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WO2004/099740 | 11/18/2004 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4399360 | Fotino | Aug 1983 | A |
5471515 | Fossum et al. | Nov 1995 | A |
5528059 | Isogai | Jun 1996 | A |
5541402 | Ackland et al. | Jul 1996 | A |
5587596 | Chi et al. | Dec 1996 | A |
5614744 | Merrill | Mar 1997 | A |
5625210 | Lee et al. | Apr 1997 | A |
5841126 | Fossum et al. | Nov 1998 | A |
5909026 | Zhou et al. | Jun 1999 | A |
5933190 | Dierickx et al. | Aug 1999 | A |
5949483 | Fossum et al. | Sep 1999 | A |
5965875 | Merrill | Oct 1999 | A |
6001667 | Saitoh et al. | Dec 1999 | A |
6005619 | Fossum | Dec 1999 | A |
6011251 | Dierickx et al. | Jan 2000 | A |
6027956 | Irissou | Feb 2000 | A |
6049118 | Nagano | Apr 2000 | A |
6051857 | Miida | Apr 2000 | A |
6146957 | Yamasaki | Nov 2000 | A |
6150683 | Merrill et al. | Nov 2000 | A |
6169318 | McGrath | Jan 2001 | B1 |
6218684 | Kuhara et al. | Apr 2001 | B1 |
6225670 | Dierickx | May 2001 | B1 |
6235549 | Bawolek et al. | May 2001 | B1 |
6242743 | DeVito et al. | Jun 2001 | B1 |
6346696 | Kwon | Feb 2002 | B1 |
6359293 | Woodward | Mar 2002 | B1 |
6403998 | Inoue | Jun 2002 | B1 |
6404029 | Hosokawa et al. | Jun 2002 | B1 |
6433374 | Fukunaga et al. | Aug 2002 | B1 |
6465859 | Fujiwara et al. | Oct 2002 | B1 |
6545303 | Scheffer | Apr 2003 | B1 |
6608337 | Hynecek | Aug 2003 | B2 |
6632701 | Merrill | Oct 2003 | B2 |
6656760 | Schmitz et al. | Dec 2003 | B2 |
6713796 | Fox | Mar 2004 | B1 |
6762441 | Janesick | Jul 2004 | B1 |
6838667 | Tsuneta et al. | Jan 2005 | B2 |
7253019 | Dierickx | Aug 2007 | B2 |
7262411 | Nguyen-Huu et al. | Aug 2007 | B2 |
20020045306 | Watanabe | Apr 2002 | A1 |
20020100915 | Hynecek | Aug 2002 | A1 |
20030116717 | Knippelmeyer | Jun 2003 | A1 |
20030143774 | Takahashi et al. | Jul 2003 | A1 |
20060169910 | Frosien et al. | Aug 2006 | A1 |
Number | Date | Country |
---|---|---|
0858111 | Aug 1998 | EP |
0883187 | Dec 1998 | EP |
0903935 | Mar 1999 | EP |
0858212 | May 2002 | EP |
1391932 | Feb 2004 | EP |
1391932 | Feb 2004 | EP |
2019085 | Oct 1979 | GB |
63-292670 | Nov 1988 | JP |
03-074874 | Mar 1991 | JP |
10-284748 | Oct 1998 | JP |
11-31839 | Feb 1999 | JP |
2002-203954 | Jul 2002 | JP |
WO-9916238 | Apr 1999 | WO |
WO-9966529 | Dec 1999 | WO |
WO-0057205 | Sep 2000 | WO |
WO-02101832 | Dec 2002 | WO |
Number | Date | Country | |
---|---|---|---|
20060278943 A1 | Dec 2006 | US |