1. An apparatus which utilizes an electron beam for inspection or metrology of a substrate, the apparatus comprising a CRT-type gun and deflectors to generate and scan the electron beam.
2. The apparatus of claim 1, wherein the CRT-type gun comprises metal plates supported by and separated by insulating material.
3. The apparatus of claim 2, wherein the insulating material comprises fused glass beads.
4. The apparatus of claim 1, wherein the apparatus further comprises a magnetic objective lens.
5. The apparatus of claim 1, wherein the CRT-type gun is plugged into the apparatus so as to be readily replaceable by plugging in a new column.
6. The apparatus of claim 1, further comprising a gate valve to separate the CRT-type gun from a vacuum chamber into which the substrate is loaded.
7. The apparatus of claim 1, wherein the CRT-type gun is in a sealed vacuum, and wherein the CRT-type gun emits the electron beam through an electron-beam-transparent window.
8. An apparatus which utilizes an electron beam for inspection or metrology of a substrate, the apparatus comprising
a vacuum chamber including a base plate;
a support structure connected to the base plate; and
a column including an electron source and a series of electron lenses,
wherein the electron lenses comprise metal plates mechanically supported by and separated by insulating material.
9. The apparatus of claim 8, wherein the insulating material comprises fused glass beads.
10. The apparatus of claim 8, wherein the column is mechanically supported by a top portion thereof connected to the support structure.
11. A method of inspecting a substrate or measuring an aspect of the substrate, the method comprising focusing an electron beam using electrostatic lenses formed by an arrangement of metal plates supported by and separated by insulative material such that the spacing between the metal plates is fixed.
12. The method of claim 11, wherein the insulative material comprises fused glass beads.
13. The method of claim 11, wherein the electron beam is further focused by a magnetic objective lens.
14. The method of claim 11, wherein the arrangement of metal plates is in a sealed vacuum, and wherein the electron beam is transmitted through an electron-beam-transparent window.
15. A method of manufacturing an electron beam column for an electron microscope, the method comprising using insulative material to separate a series of metal plates by fixed distances.
16. The method of claim 15, wherein the insulative material comprises fused glass beads.
17. The method of claim 15, wherein the metal plates comprise stamped metal parts.
18. The method of claim 15, wherein the metal plates comprise arc-cut metal parts.
19. A scanning electron microscope apparatus having an electron gun lens assembly, wherein the gun lens assembly comprises at least three separate metal plates forming a gun lens and at least two insulators fixing positions of the metal plates with respect to each other.
20. The scanning electron microscope apparatus of claim 19, wherein the insulators comprise fused glass beading.
21. The scanning electron microscope apparatus of claim 19, wherein the gun lens assembly is in a sealed vacuum, and wherein the gun lens assembly transmits an electron beam through an electron-beam-transparent window towards a substrate being scanned.
22. A scanning electron microscope apparatus having multiple electron gun lens assemblies, wherein each gun lens assembly comprises at least three separate metal plates forming a gun lens and at least two insulators fixing positions of the metal plates with respect to each other.
23. The apparatus of claim 22, wherein an electron beam is generated from each of the multiple gun lens assemblies, and wherein a deflector system is configured to deflect each electron beam to scan across a different portion of a substrate being inspected.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A device comprising:
a semiconductor substrate;
a first Metal-Oxide-Semiconductor (MOS) device at a top surface of the semiconductor substrate;
a second MOS device at the top surface of the semiconductor substrate;
a first trench extending into the semiconductor substrate from the top surface of the semiconductor substrate, the first trench including a first portion, a second portion, and a third portion, wherein:
the first portion of the first trench surrounds the first MOS device and the second MOS device,
the second portion of the first trench extends between the first MOS device and the second MOS device, the second portion of the first trench being contiguous with the first portion of the first trench, and
the third portion of the first trench extends between the first MOS device and the second MOS device, the third portion of the first trench being contiguous with the first portion of the first trench, the second portion of the first trench being separated from the third portion of the first trench in a direction from the first MOS device to the second MOS device by a portion of the semiconductor substrate;
an Inter-Layer Dielectric (ILD) layer over the semiconductor substrate and extending into the first trench, wherein a first air gap is sealed in the first trench by the ILD layer, wherein at least a portion of the first air gap is disposed in the first trench below the top surface of the semiconductor substrate, wherein the semiconductor substrate along a first semiconductor sidewall of the first trench contacts the first air gap, and wherein the first air gap is contiguous through the first portion of the first trench, the second portion of the first trench, and the third portion of the first trench; and
a contact plug through the ILD and connected to at least one of the first MOS device and the second MOS device.
2. The device of claim 1, further comprising:
wherein the first MOS device comprises:
a first gate electrode over the semiconductor substrate; and
a first sourcedrain region in the semiconductor substrate and adjacent the first gate electrode, the second portion of the first trench being adjacent to the first sourcedrain region, and
wherein the second MOS device comprises:
a second gate electrode over the semiconductor substrate; and
a second sourcedrain region in the semiconductor substrate and adjacent the second gate electrode, the third portion of the first trench being adjacent to the second sourcedrain region, wherein the ILD layer extends over the first gate electrode, the second gate electrode, the first sourcedrain region, and the second sourcedrain region.
3. The device of claim 2 further comprising:
a first sourcedrain silicide region over the first sourcedrain region; and
a second sourcedrain silicide region over the second sourcedrain region, wherein the ILD layer comprises a portion overlapping the first sourcedrain silicide region and the second sourcedrain silicide region.
4. The device of claim 1 further comprising:
a low-voltage MOS device at the top surface of the semiconductor substrate, wherein each of the first MOS device and the second MOS device is a high-voltage MOS device; and
a Shallow Trench Isolation (STI) region extending into the semiconductor substrate, wherein the STI region forms a ring encircling the low-voltage MOS device, and wherein the high-voltage MOS device has a breakdown voltage higher than a breakdown voltage of the low-voltage MOS device.
5. The device of claim 1, wherein the ILD layer contacts a top surface of the portion of the semiconductor substrate separating the second portion of the first trench and the third portion of the first trench in the direction from the first MOS device to the second MOS device.
6. The device of claim 1 further comprising a second trench extending into the semiconductor substrate from the top surface of the semiconductor substrate and surrounding the first trench, wherein the ILD layer extends into the second trench, and a second air gap is sealed in the second trench by the ILD layer, wherein at least a portion of the second air gap is disposed in the second trench below the top surface of the semiconductor substrate, wherein the second air gap forms a full air gap ring encircling the first trench.
7. A device comprising:
a semiconductor substrate;
a first Metal-Oxide-Semiconductor (MOS) device at a top surface of the semiconductor substrate, wherein the first MOS device comprises:
a first gate electrode over the semiconductor substrate; and
a first sourcedrain region in the semiconductor substrate and adjacent the first gate electrode;
a second MOS device at the a top surface of the semiconductor substrate, wherein the second MOS device comprises:
a second gate electrode over the semiconductor substrate; and
a second sourcedrain region in the semiconductor substrate and adjacent the second gate electrode;
a first trench extending from the top surface of the semiconductor substrate into the semiconductor substrate, the first trench including:
a first portion of the first trench surrounding the first MOS device and the second MOS device,
a second portion of the first trench extending between the first sourcedrain region and the second sourcedrain region, the second portion of the first trench being contiguous with the first portion of the first trench, the second portion of the first trench being adjacent to the first sourcedrain region, and
a third portion of the first trench extending between the first sourcedrain region and the second sourcedrain region, the third portion of the first trench being contiguous with the first portion of the first trench, the third portion of the first trench being adjacent to the second sourcedrain region, the second portion of the first trench being separated from the third portion of the first trench in a direction from the first sourcedrain region to the second sourcedrain region by a portion of the semiconductor substrate; and
an Inter-Layer Dielectric (ILD) layer comprising:
a lower portion over and physically contacting the first gate electrode, the second gate electrode, the first sourcedrain region, and the second sourcedrain region, the lower portion further extending into the first trench and along sidewalls of the first trench, and
an upper portion over the lower portion, wherein the lower portion and the upper portion comprise different materials, the upper portion extending into the first trench, wherein the upper portion seals a first air gap in the first trench, with all portions of the ILD layer exposed to the first air gap being portions of the upper portion, and wherein the first air gap is contiguous through the first portion of the first trench, the second portion of the first trench, and the third portion of the first trench.
8. The device of claim 7, wherein substantially an entirety of the first air gap is below the top surface of the semiconductor substrate.
9. The device of claim 7 further comprising a shallow trench isolation region in the semiconductor substrate having a height, wherein the first trench has a thickness ranging between about two times and about ten times the height of the shallow trench isolation region.
10. The device of claim 7, wherein each of the first MOS device and the second MOS device is a high-voltage MOS device, and wherein the device further comprises:
a low-voltage MOS device at the top surface of the semiconductor substrate; and
a Shallow Trench Isolation (STI) region extending into the semiconductor substrate, wherein the STI region forms a ring encircling the low-voltage MOS device, and wherein the high-voltage MOS device has a breakdown voltage higher than a breakdown voltage of the low-voltage MOS device.
11. The device of claim 7, wherein the lower portion of the ILD layer contacts respective sidewalls of the first sourcedrain region and the second sourcedrain region.
12. The device of claim 7, wherein the first sourcedrain region comprises a first sourcedrain silicide, and the second sourcedrain region comprises a second sourcedrain silicide, the lower portion of the ILD being over and physically contacting the first sourcedrain silicide and the second sourcedrain silicide.
13. The device of claim 7, wherein the ILD layer contacts a top surface of the portion of the semiconductor substrate separating the second portion of the first trench and the third portion of the first trench in the direction from the first MOS device to the second MOS device.
14. The device of claim 7 further comprising a second trench extending from the top surface of the semiconductor substrate into the semiconductor substrate and surrounding the first trench, wherein the lower portion of the ILD layer extends into the second trench and along sidewalls of the second trench, the upper portion of the ILD layer extends into the second trench and seals a second air gap in the second trench, wherein the second air gap forms a full air gap ring encircling the first trench.
15. A device comprising:
a semiconductor substrate;
a first Metal-Oxide-Semiconductor (MOS) device at a top surface of the semiconductor substrate, wherein the first MOS device comprises a first gate electrode and a first sourcedrain region;
a second MOS device at the top surface of the semiconductor substrate, wherein the second MOS device comprises a second gate electrode and a second sourcedrain region;
a trench extending from the top surface of the semiconductor substrate into the semiconductor substrate, the trench including a first portion, a second portion, and a third portion, wherein:
the first portion of the trench surrounds the first MOS device and the second MOS device,
the second portion of the trench extends between the first sourcedrain region and the second sourcedrain region, the second portion of the trench being adjacent to the first sourcedrain region, the second portion of the trench being contiguous with the first portion of the trench, and
the third portion of the trench extends between the first sourcedrain region and the second sourcedrain region, the third portion of the trench being adjacent to the second sourcedrain region, the third portion of the trench being contiguous with the first portion of the trench, the second portion of the trench being separated from the third portion of the trench in a direction from the first sourcedrain region to the second sourcedrain region by a portion of the semiconductor substrate; and
an Inter-Layer Dielectric (ILD) layer comprising a first layer over and physically contacting the first gate electrode, the second gate electrode, the first sourcedrain region, and the second sourcedrain region and along and physically contacting a sidewall of the trench, wherein the ILD layer further comprises a second layer extending into the trench, the first layer and the second layer comprising different materials, the ILD layer sealing an air gap in the trench, with all portions of the ILD layer exposed to the air gap being portions of the second layer, wherein at least a portion of the air gap is below the top surface of the semiconductor substrate, and wherein the air gap is contiguous through the first portion of the trench, the second portion of the trench, and the third portion of the trench.
16. The device of claim 15, wherein a top end of the air gap projects above the top surface of the semiconductor substrate.
17. The device of claim 15, wherein a top end of the air gap is disposed below the top surface of the semiconductor substrate.
18. The device of claim 15, wherein a volume of the air gap is between about 0.3 to about 0.9 times a volume of the trench.
19. The device of claim 15, wherein a depth of the trench is between about 2 to about 10 times a height of a laterally adjacent shallow trench isolation region.
20. A structure comprising:
a semiconductor substrate;
a first device at a top surface of the semiconductor substrate, the first device comprising a first gate electrode over the top surface of the semiconductor substrate and a first sourcedrain region in the semiconductor substrate;
a second device at the top surface of the semiconductor substrate, the second device comprising a second gate electrode over the top surface of the semiconductor substrate and a second sourcedrain region in the semiconductor substrate;
a first trench extending from the top surface of the semiconductor substrate into the semiconductor substrate, the first trench including:
a first portion of the first trench surrounding the first device and the second device,
a second portion of the first trench extending between the first sourcedrain region and the second sourcedrain region and being adjacent to the first sourcedrain region, the second portion of the first trench being contiguous with the first portion of the first trench, and
a third portion of the first trench extending between the first sourcedrain region and the second sourcedrain region and being adjacent to the second sourcedrain region, the third portion of the first trench being contiguous with the first portion of the first trench, the second portion of the first trench being separated from the third portion of the first trench in a direction from the first sourcedrain region to the second sourcedrain region by a portion of the semiconductor substrate;
a second trench extending from the top surface of the semiconductor substrate into the semiconductor substrate and surrounding the first trench;
a first ILD layer conformally over and contacting the first gate electrode and the second gate electrode, over and contacting the first sourcedrain region and the second sourcedrain region, and in the first trench and the second trench, the first ILD layer contacting a first semiconductor sidewall and a second semiconductor sidewall of the first trench;
a second ILD layer over the first ILD layer, wherein:
the first ILD layer is a material different from the second ILD layer,
the second ILD layer extends into the first trench and seals a first air gap in the first trench, and at least a portion of the first air gap is below the top surface of the semiconductor substrate,
the second ILD layer extends into the second trench and seals a second air gap in the second trench, and at least a portion of the second air gap is below the top surface of the semiconductor substrate,
the second ILD layer is along respective portions of the first ILD layer along the first semiconductor sidewall and the second semiconductor sidewall of the first trench, the first air gap only contacting the second ILD layer,
a plane is parallel to the top surface and intersects sequentially the first semiconductor sidewall of the first trench, the portion of the first ILD layer contacting the first semiconductor sidewall of the first trench, a first portion of the second ILD layer, the first air gap, a second portion of the second ILD layer, the portion of the first ILD layer contacting the second semiconductor sidewall of the first trench, and the second semiconductor sidewall of the first trench,
the first air gap has a first portion in the first portion of the first trench that forms a first full lateral ring around the first device and the second device, and the first air gap has a second portion in the second portion of the first trench and a third portion in the third portion of the first trench, the first portion of the first air gap, the second portion of the first air gap, and the third portion of the first air gap being contiguous, and
the second air gap forms a second full lateral ring around the first trench; and
a contact plug through the first ILD layer and the second ILD layer to the first sourcedrain region.