H01J2237/0216

Vibration-suppressing mechanism to be attached to charged particle beam device, and charged particle beam device

The vibration-suppressing mechanism includes: a first arcuate member that has an inner wall surface shaped along an outer wall of a column of a charged particle beam device; a second arcuate member that has an inner wall surface shaped along an outer wall of a column of the charged particle beam device and is connected to the first arcuate member to form an annular member surrounding the outer wall of the column of the charged particle beam device; a fastening member fastening both the first arcuate member and the second arcuate member together; a vibration sensor attached to the arcuate member; and an actuator that operates in response to an output of the vibration sensor, and can be detached by releasing connection obtained by a connecting member.

Vacuum chamber arrangement for charged particle beam generator

The invention relates to charged particle beam generator comprising a charged particle source for generating a charged particle beam, a collimator system comprising a collimator structure with a plurality of collimator electrodes for collimating the charged particle beam, a beam source vacuum chamber comprising the charged particle source, and a generator vacuum chamber comprising the collimator structure and the beam source vacuum chamber within a vacuum, wherein the collimator system is positioned outside the beam source vacuum chamber. Each of the beam source vacuum chamber and the generator vacuum chamber may be provided with a vacuum pump.

Charged particle beam device

An object of the present invention is to provide a charged particle beam device capable of correcting an image drift caused by stage deformation or the like during imaging immediately after stage movement. In order to achieve the above object, proposed is a charged particle beam device including: a sample chamber; a sample stage arranged in the sample chamber; a charged particle beam source which releases a charged particle beam; a deflector which deflects the charged particle beam released from the charged particle beam source; a focusing lens which focuses the charged particle beam; and a control device that controls the sample stage and the deflector, in which the control device calculates a deflection signal to be supplied to the deflector based on a thrust information when driving of the sample stage and a coefficient assigned for each position of the sample stage.

Sample stage

Sample stage, e.g. for use in a scanning electron microscope. The sample stage includes a base, a sample carrier, and an actuator assembly arranged for moving the sample carrier in at least one direction substantially parallel to the base. The actuator assembly is arranged so as not to contribute to the mechanical stiffness of the sample stage from the sample carrier to the base.

CHARGED PARTICLE BEAM OPTICAL APPARATUS, EXPOSURE APPARATUS, EXPOSURE METHOD, CONTROL APPARATUS, CONTROL METHOD, INFORMATION GENERATION APPARATUS, INFORMATION GENERATION METHOD AND DEVICE MANUFACTURING METHOD
20200051780 · 2020-02-13 · ·

A charged particle beam optical apparatus has a plurality of irradiation optical systems each of which irradiates an object with a charged particle beam and a first control apparatus configured to control a second irradiation optical system on the basis of an operation state of a first irradiation optical system.

CHARGED PARTICLE BEAM OPTICAL SYSTEM, EXPOSURE APPARATUS, EXPOSURE METHOD AND DEVICE MANUFACTURING METHOD
20200051774 · 2020-02-13 · ·

A charged particle beam optical system is provided with a plurality of irradiation optical systems each of which irradiates an object W with a charged particle beam EB, the plurality of irradiation optical system includes a first irradiation optical system and a second irradiation optical system that generates a second magnetic field having a characteristics different from a characteristics of a first magnetic field generated by the first irradiation optical system.

Method for operating a pressure system of a device for imaging, analyzing and/or processing an object and a device for carrying out the method
10546716 · 2020-01-28 · ·

Operating a pressure system of a device for imaging, analyzing and/or processing an object, and a particle beam device for carrying out this method. In particular, the particle beam device is an electron beam device and/or an ion beam device. The method may include disconnecting a pump from a pressure reservoir, connecting the pressure reservoir to a vacuum chamber, measuring a reservoir pressure existing in the pressure reservoir, determining a first pressure value of the reservoir pressure at a first time and a second pressure value of the reservoir pressure at a second time, determining a functional relationship between the first pressure value of the reservoir pressure and the second pressure value of the reservoir pressure, extrapolating the functional relationship for times later than the second time, determining a threshold time using the extrapolated functional relationship, and determining a remaining time period until the reservoir pressure reaches the pressure threshold.

MULTI-CHARGED-PARTICLE-BEAM WRITING APPARATUS AND BEAM EVALUATING METHOD FOR THE SAME
20190385812 · 2019-12-19 · ·

In one embodiment, a multi-charged-particle-beam writing apparatus includes a shaping aperture array plate including a plurality of first apertures through which a charged particle beam passes to form multiple beams, a movable stage on which a writing target substrate is placed, an inspection aperture plate disposed on the stage, the inspection aperture plate including a second aperture through which one of the multiple beams passes, a current detector detecting a current of the beam that has passed through the second aperture of the inspection aperture plate, a deflector deflecting the multiple beams, the deflector controlling deflection of one of the multiple beams such that the one beam is located at a predetermined position in a region including the second aperture and a surrounding region of the second aperture, and a calculator obtaining a beam position based on the beam current detected by the current detector.

Cryotransfer holder and workstation

A workstation is described for mounting specimens into a cryotransfer holder at cryogenic temperature. The workstation allows rotation about the cryotransfer holder axis to improve access to the sample placement area on the holder and to facilitate easy removal and retrieval of the sample after imaging. The cryotransfer holder includes a cylindrical dewar configured to maintain a constant center of mass about the holder axis regardless of orientation of the dewar.

SUBSTRATE PROCESSING APPARATUS

Support arrangement for supporting a radiation projection system in a substrate processing apparatus, the support arrangement comprising: a support body for supporting the radiation projection system; electrical wiring for supplying voltages to components within the radiation projection system and/or for supplying control data for modulation of radiation to be projected onto a target surface by the radiation projection system; optical fibers, for supplying control data for modulation of radiation to be projected onto a target surface by the radiation projection system, and a cooling arrangement comprising one or more fluid conduits for cooling the radiation projection system; the electrical wiring, the optical fibers, and the cooling arrangement being at least partly accommodated in and/or supported by the support body.