Ion Milling Device
20210265130 · 2021-08-26
Inventors
Cpc classification
H01J37/317
ELECTRICITY
H01J37/1478
ELECTRICITY
H01J37/20
ELECTRICITY
H01J2237/006
ELECTRICITY
H01J2237/31745
ELECTRICITY
H01J37/09
ELECTRICITY
G01N1/28
PHYSICS
International classification
H01J37/20
ELECTRICITY
H01J37/09
ELECTRICITY
H01J37/147
ELECTRICITY
Abstract
An ion milling device capable of high-speed milling is realized even for a specimen containing a material having an imide bond. Therefore, the ion milling device includes: a vacuum chamber 6 configured to hold a specimen 3 in a vacuum atmosphere; an ion gun 1 configured to irradiate the specimen with a non-focused ion beam 2; a vaporization container 17 configured to store a mixed solution 13 of a water-soluble ionic liquid and water; and nozzles 11, 12 configured to supply water vapor obtained by vaporizing the mixed solution to a vicinity of a surface of the specimen processed by the ion beam.
Claims
1. An ion milling device comprising: a vacuum chamber configured to hold a specimen in a vacuum atmosphere; an ion gun configured to irradiate the specimen with a non-focused ion beam; a vaporization container configured to store a mixed solution of a water-soluble ionic liquid and water; and a nozzle configured to supply water vapor obtained by vaporizing the mixed solution to a vicinity of a surface of the specimen processed by the ion beam.
2. The ion milling device according to claim 1, further comprising: a specimen container provided in the vacuum chamber and having an opening portion on an upper surface, wherein the specimen is placed in the specimen container, and a processing surface of the specimen is irradiated with the ion beam from the opening portion of the specimen container.
3. The ion milling device according to claim 2, wherein the nozzle includes a first nozzle and a second nozzle, the first nozzle is disposed to inject the water vapor from the opening portion of the specimen container to the processing surface of the specimen, and the second nozzle is disposed to supply the water vapor from a bottom of the specimen container into the specimen container.
4. The ion milling device according to claim 3, further comprising: a specimen rotating mechanism having a turntable that rotates around a center axis in a vertical direction, wherein the specimen container is disposed on the turntable, and the second nozzle is disposed to supply, through a center of the turntable, the water vapor from the bottom of the specimen container into the specimen container.
5. The ion milling device according to claim 2, further comprising: a specimen rotating mechanism disposed in the specimen container, and having a turntable that rotates around a center axis in a vertical direction; and a specimen holding portion disposed on the turntable, wherein the specimen is placed on the specimen holding portion, and the nozzle is disposed to supply the water vapor from a side surface of the specimen container into the specimen container.
6. The ion milling device according to claim 1, further comprising: a liquid level sensor configured to monitor a liquid level of the mixed solution in the vaporization container; a densitometer configured to measure a concentration of the mixed solution in the vaporization container; and a solution control unit configured to control, based on the liquid level and the concentration of the mixed solution, an amount of the ionic liquid and an amount of the water supplied to the vaporization container.
7. The ion milling device according to claim 6, wherein the vaporization container is disposed in an atmospheric-pressure atmosphere.
8. The ion milling device according to claim 1, further comprising: a first dew point meter configured to measure humidity in the vaporization container; a second dew point meter configured to measure humidity in the vicinity of the surface of the specimen processed by the ion beam; and a humidity control unit configured to control an amount of the water vapor supplied from the nozzle based on a measured value of the first dew point meter and a measured value of the second dew point meter.
9. The ion milling device according to claim 8, wherein the humidity control unit continuously or intermittently supplies the water vapor from the nozzle.
10. The ion milling device according to claim 4, further comprising: a tilt mechanism configured to tilt the ion gun; and a moving mechanism configured to move the ion gun in the vertical direction or a horizontal direction.
11. The ion milling device according to claim 2, further comprising: a specimen holding portion disposed in the specimen container and configured to hold the specimen; and a shielding plate that shields the specimen from the ion beam, wherein the specimen is disposed to protrude a predetermined length from the shielding plate, and is placed such that a portion of the specimen that protrudes from the shielding plate is located at an opening portion of the specimen holding portion.
12. The ion milling device according to claim 11, further comprising: a swing shaft coupled to the specimen holding portion and having a center axis in a horizontal direction, wherein the swing shaft swings clockwise and counterclockwise around the center axis by a predetermined angle.
13. The ion milling device according to claim 11, wherein the nozzle is disposed to supply the water vapor from a side surface of the specimen container into the specimen container.
14. The ion milling device according to claim 11, further comprising: a cooling mechanism; and a braided wire that connects the shielding plate and the cooling mechanism, wherein the specimen is cooled via the shielding plate.
15. The ion milling device according to claim 5, further comprising: a tilt mechanism configured to tilt the ion gun; and a moving mechanism configured to move the ion gun in the vertical direction or a horizontal direction.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DESCRIPTION OF EMBODIMENTS
[0021] Hereinafter, embodiments of the invention will be described with reference to the drawings.
First Embodiment
[0022]
[0023] Further, the water vapor supply mechanism of the first embodiment controls a pressure of water vapor supplied as the assist gas, and reduces the amount of water molecules supplied from the nozzles 11, 12, so that a decrease in vacuum degree due to excessive supply of the water vapor to the vacuum chamber 6 is prevented. The water vapor supply mechanism will be described below.
[0024] A vaporization container 17 stores a mixed solution 13 of an ionic liquid stored in an ionic liquid storage unit 24 and water stored in a water storage unit 25, and vaporizes the mixed solution 13, so that the pressure of the water vapor is reduced (Raoult's law), and water vapor having a low vapor pressure is introduced into the vacuum chamber 6. By reducing the pressure of the introduced vapor water, the amount of water molecules supplied to the vacuum chamber 6 can be reduced. Here, as the ionic liquid, a water-soluble ionic liquid which has a melting point of 100° C. or lower and is dilutable with water is used.
[0025] The water vapor supply mechanism is disposed in an atmospheric-pressure atmosphere outside the vacuum chamber 6 except for the nozzles 11, 12 and pipe portions connected to the nozzles. The ionic liquid storage unit 24 for storing the ionic liquid is connected to the vaporization container 17 via a pipe 26, and the water storage unit 25 for storing water is connected to the vaporization container 17 via a pipe 27. In the vaporization container 17, a liquid level sensor 19 monitors an amount of the mixed solution 13, and a densitometer 20 measures a concentration of the mixed solution 13. In order to keep a liquid level and the concentration of the mixed solution 13 measured by the densitometer 20 at optimum values, a solution control unit 21 sends control signals respectively to a flow rate adjusting valve 22 provided in the pipe 26 and a flow rate adjusting valve 23 provided in the pipe 27, so that the ionic liquid and water are supplied from the ionic liquid storage unit 24 and the water storage unit 25 to the vaporization container 17 through the pipes 26, 27, respectively.
[0026] A dew point meter 29 is further provided in the vaporization container 17 to measure a concentration (humidity) of water vapor retained in the vaporization container 17. On the other hand, a dew point meter 30 is also provided in the vicinity of the specimen processing surface 4 of the specimen container 18 to measure a concentration (humidity) of water vapor in the vicinity of the specimen processing surface 4, and a humidity control unit 28 monitors each measured value. The humidity control unit 28 controls the amount of water vapor supplied from the nozzles 11, 12 based on the measured values of the dew point meter 29 and the dew point meter 30. When the measured value of the dew point meter 29 is larger than the measured value of the dew point meter 30, the humidity control unit 28 sends control signals to an open/close valve 7 and a flow rate adjusting valve 8 to inject water vapor from the nozzle 11, and sends control signals to an open/close valve 9 and a flow rate adjusting valve 10 to inject water vapor from the nozzle 12, so that the concentration of the water vapor in the vicinity of the specimen processing surface 4 is increased. In order to set the concentration of the water vapor in the vicinity of the specimen processing surface 4 measured by the dew point meter 30 at a desired value, for example, equal to the measured value of the dew point meter 29, the humidity control unit 28 controls the open/close valve 7, the flow rate adjusting valve 8, the open/close valve 9, and the flow rate adjusting valve 10 to adjust the amount of water vapor supplied from the nozzles or stop the supply. Both of the two nozzles may be used, or only one nozzle may be used. Further, water vapor may be continuously supplied, or may be intermittently supplied by periodically opening/closing the open/close valves 7, 9 controlled according to a pulse signal. By intermittently supplying water vapor, the amount of water vapor supplied from the nozzle into the vacuum chamber 6 can be further reduced.
[0027] The water vapor (water molecules) retained in the vicinity of the specimen processing surface 4 becomes the assist gas of the ion beam 2 emitted from the ion gun 1, and accelerates a processing speed of the specimen 3 containing the material having the imide bond. Further, the water vapor supplied into the vacuum chamber 6 is introduced into the vacuum atmosphere from the atmospheric-pressure atmosphere and expands at once, so that there is also a cooling effect of lowering a temperature of the specimen 3 in the vacuum chamber 6. As a result, there is an effect of preventing the specimen 3 from sublimating or melting due to irradiation heat of the ion beam 2.
[0028]
[0029]
[0030] In addition to the tilt mechanism, the ion gun 1 is provided with a moving mechanism that moves the ion gun 1 in a Z direction (vertical direction) or a Y direction (horizontal direction). By the moving mechanism moving the ion gun 1, the center 34 of a specimen stub and a center 35 of the ion gun are eccentric by ϵ, and a wider range of the specimen surface can be evenly processed.
[0031] An ion beam milling processing speed (sputtering yield) depends on an irradiation angle of the ion beam 2, and also depends on a material to be processed.
[0032] For example, the center 34 of the specimen holding portion 5 and the center of the ion gun are eccentric by ϵ by the moving mechanism of the ion gun 1, and meanwhile an ion gun center 35c is kept at 30° with respect to the specimen surface by the tilt mechanism of the ion gun 1, so that the processing is performed by the irradiation with the ion beam 2. As shown in
[0033] On the other hand, while an axis of the ion gun center 35c is kept at 80° with respect to the specimen surface by the tilt mechanism of the ion gun 1, the processing is performed by the irradiation with the ion beam 2. As shown in
[0034]
[0035] Further,
Second Embodiment
[0036]
[0037] Also in this embodiment, in order to shorten milling time of the material having the imide bond, water vapor is supplied. In the configuration of
[0038]
REFERENCE SIGNS LIST
[0039] 1: ion gun, 2: ion beam, 3: specimen, 4: specimen processing surface, 5, 61: specimen holding portion, 6: vacuum chamber, 7, 9: open/close valve, 8, 10: flow rate adjusting valve, 11,12: nozzle, 13: mixed solution, 17: vaporization container, 18: specimen container, 19: liquid level sensor, 20: densitometer, 21: solution control unit, 22,23: flow rate adjusting valve, 24: ionic liquid storage unit, 25: water storage unit, 26,27: pipe, 28: humidity control unit, 29,30: dew point meter, 32: worm gear, 33: motor, 62: opening portion, 63: shielding plate, 64: coupling portion, 71: motor, 72: swing shaft, 80: cooling mechanism, 81: braided wire.