EFFUSION CELL WITH RETRACTABLE CRUCIBLE FOR MOLECULAR BEAM EPITAXY
20230287594 ยท 2023-09-14
Assignee
Inventors
- Peng DU (Hunan, CN)
- Xin GONG (Hunan, CN)
- Hongwei FU (Hunan, CN)
- Wei WEI (Hunan, CN)
- Fengwu CHEN (Hunan, CN)
- Hui XIAO (Hunan, CN)
- Shu NING (Hunan, CN)
- Wenli LV (Hunan, CN)
Cpc classification
International classification
Abstract
The invention discloses an effusion cell with a retractable crucible for molecular beam epitaxy, comprising a crucible bracket, a mounting flange, a heat shielding cylinderarranged on an upper side of the mounting flange, a gate valvearranged on a lower side of the mounting flange, an outer cylinderarranged on a lower side of the gate valveand a driving devicefor driving the crucible bracketto move between the heat shielding cylinderand the outer cylinder, the heat shielding cylinderis internally provided with a heater, the outer cylinder driving deviceis hermetically connected to the outer cylinder.
Claims
1. An effusion cell with a retractable crucible for molecular beam epitaxy, wherein comprising a crucible bracket, a mounting flange, a heat shielding cylinder arranged on an upper side of the mounting flange, a gate valve arranged on a lower side of the mounting flange, an outer cylinder arranged on a lower side of the gate valve and a driving device for driving the crucible bracket to move between the heat shielding cylinder and the outer cylinder, the heat shielding cylinder is internally provided with a heater, the outer cylinder is connected to a vacuum pump, and the driving device is hermetically connected to the outer cylinder.
2. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 1, wherein a water cooling shroud is arranged on an inner side of the heat shielding cylinder, a heat shield is arranged on an inner side of the water cooling shroud, and the heater is arranged on an inner side of the heat shield.
3. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 2, wherein a cooling water inlet/outlet and a power feedthrough are arranged on a side wall of the mounting flange, the water cooling shroud is communicated with a cooling water source by means of the cooling water inlet/outlet, and the heater is communicated with a power supply by means of the power feedthrough.
4. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 2, wherein a connecting cylinder is further arranged between the mounting flange and the gate valve, a cooling water inlet/outletis arranged on a side wall of the mounting flange, a power feedthrough is arranged on a side wall of the connecting cylinder, the water cooling shroud is communicated with a cooling water source by means of the cooling water inlet/outlet, and the heater is communicated with a power supply by means of the power feedthrough.
5. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 4, wherein the heat shielding cylinder is internally provided with a fixed thermocouple, a fixed thermocouple feedthrough is arranged on the side wall of the connecting cylinder, and the fixed thermocouple is communicated with a temperature controller by means of the fixed thermocouple feedthrough.
6. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 3, wherein the heat shielding cylinder is internally provided with a fixed thermocouple, a fixed thermocouple feedthrough is arranged on the side wall of the mounting flange, and the fixed thermocouple is communicated with the temperature controller by means of the fixed thermocouple feedthrough.
7. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 1, wherein the driving device is a magnetically coupled motion transmitting mechanism.
8. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 1, wherein the crucible bracket is provided with a retractable thermocouple, and a working end of the retractable thermocouple contacts the crucible.
9. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 8, wherein the crucible bracket is provided with a retractable thermocouple feedthrough, and the retractable thermocouple is communicated with a temperature controller by means of the retractable thermocouple feedthrough.
10. The effusion cell with a retractable crucible for molecular beam epitaxy according to claim 8, wherein the driving device (6) comprises a driving guide and a bellows,an upper end of the bellows, is hermetically connected to a bottom of the outer cylinder, and a lower end of the bellows is hermetically connected to a bottom of the crucible bracket.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF THE EMBODIMENTS
[0026] The invention will be further described in detail below in combination with drawings and specific embodiments.
Embodiment 1
[0027]
[0028] The effusion cell is connected to a growth chamber by means of the mounting flange 1, the mounting flange 1 is opened in the middle, and the crucible 8 and the crucible bracket 5 can move up and down through the middle opening of the mounting flange 1.
[0029] A part of the effusion cell located in the growth chamber is shown in
[0030] The lower end of the heat shielding cylinder 2 is opened, so that the crucible 8 and the crucible bracket 5 are extracted from the opening in the lower end of the heat shielding cylinder 2. The upper end of the heat shielding cylinder 2 is opened, so that the evaporation beam flow is ejected by means of the opening in the end of the heat shielding cylinder 2. The crucible 8 can be made of the PBN material, and an insert (not shown in the drawings) can be added to the crucible 8 to guide and improve the shape of the evaporation beam flow to reach excellent uniformity and improve source material utilization. The insert can be made of the PBN material. The crucible bracket 5 consists of multiple parts. A topmost crucible receptacle can be made of insulating material such as PBN or other ceramic. High-temperature area at the upper end of the crucible bracket 5 can be made of refractory material such as tantalum, molybdenum or tungsten. Non-high-temperature area at the lower end of the crucible bracket 5 can be made of stainless steel material.
[0031] The connecting cylinder 7 is connected to the mounting flange 1 and the gate valve 3, the connecting cylinder 7 is hollow, and the crucible 8 and the crucible bracket 5 can move through by means of the connecting cylinder 7. The power feedthrough 12, the fixed thermocouple feedthrough 13 and the cooling water inlet/outlet 11 are connected out from the mounting flange 1 or the connecting cylinder 7. The heater 21 is connected to the power feedthrough 12 by means of power cables (not shown in the drawings) and is then connected to an external power supply, and the fixed thermocouple 22 is connected to the fixed thermocouple feedthrough 13 by means of thermocouple cables (not shown in the drawings) and is then connected to an external temperature controller. Since the heater 21 and the fixed thermocouple 22 do not move along with the crucible 8 and the crucible bracket 5, the power cables and the thermocouple cables need not stretch, so that it is unnecessary to design complicated cable winding device. Thus, the reliability of a system is further improved.
[0032] The outer cylinder 4 is provided with a vacuum pump connector 41 and is externally connected to a vacuum pump by means of the vacuum pump connector 41 for independent pumping and venting of the outer cylinder 4. A driving device 6 is mounted at the bottom of the outer cylinder 4, and the driving device 6 is a magnetically coupled motion transmitting mechanism which drives the crucible bracket 5 and the crucible 8 disposed thereon to move in manual or electric mode and has precise positioning and position indicating functions.
[0033] The outer cylinder 4 can be isolated from the growth chamber by means of the gate valve 3. In a case where the crucible 8 and the crucible bracket 5 extend upwards and are located in the evaporation position, the gate valve is switched on, and the growth chamber and the outer cylinder 4 share the same vacuum environment; in a case where the crucible 8 and the crucible bracket 5 retract downwards and are located in the maintenance position, the gate valve is switched off for independent pumping and venting operations of the outer cylinder 4. A refilling operation process for the source material is as follows: the crucible 8 and the crucible bracket 5 retract to the maintenance position; the gate valve is switched off; the outer cylinder 4 is vented to atmosphere pressure; the outer cylinder 4 is detached from the gate valve; the crucible 8 is taken out from the crucible bracket 5; filling of the source material is performed; the crucible 8 is placed back on the crucible bracket 5; the outer cylinder 4 is connected to the gate valve; the outer cylinder 4 is pumped to a certain vacuum state; the gate valve is switched on; and the crucible 8 and the crucible bracket 5 extend out to the evaporation position.
Embodiment 2
[0034]
Embodiment 3
[0035]
[0036] The retractable thermocouple 51 is involved in movement of the thermocouple cables, so that the problem is solved by mean of the driving guide 61 and the bellows 62. In a case where the crucible bracket 5 and the crucible 8 disposed thereon are driven by the driving guide 61 to extend upwards, the bellows 62 is compressed. In a case where the crucible bracket 5 and the crucible 8 disposed thereon are driven by the driving guide 61 to retract downwards, the bellows 62 is stretched.
[0037] Different from the existing retractable effusion cell including bellows and the driving guide rail, in the embodiment, since only the crucible 8 and the crucible bracket 5 move, the device is shorter in distance compared with moving the effusion cell as a whole, and the caliber required by the bellows 62 is smaller, so that the risk that material debris falls into the bellows 62 is reduced. Therefore, the system is lower in cost and higher in reliability.
[0038] Although the invention has been disclosed with the preferred embodiments, the preferred embodiments are not used to limit the invention. Those skilled in the art can make various possible alternations and modification on the technical solution of the invention or modify the technical solution of the invention as equivalently changed equivalent embodiments by means of the above disclosed technical content without departing from the scope of the technical solution of the invention. Therefore, any subtle modifications, equivalent changes and modifications made on the embodiments in accordance with the technical essence of the invention shall fall within the scope of the technical solution of the invention without departing from the content of the technical solution of the invention.