Method of and apparatus for cutting a substrate or preparing a substrate for cleaving
The present application relates to a method ( 100 ) for use in cutting a substrate or preparing a substrate for cleaving. The method ( 100 ) comprises: irradiating ( 102 ) the substrate with a plurality of pulses of a laser beam, the pulses having a pulse duration of less than a nanosecond and an elongate cross sectional spatial profile, and wherein the fluence of the plurality of pulses is controlled to be less than a single shot damage threshold fluence of the substrate; providing ( 104 ) relative movement between the laser beam and the substrate such that the plurality of pulses are arranged along a cutting path; and controlling ( 106 ) the relative movement such that each of the pulses is spatially overlapped with at least one other of the pulses along the cutting path. An apparatus having a laser system configured to perform the method ( 100 ) is also disclosed.
1 . A method for use in cutting a substrate or preparing a substrate for cleaving, comprising:
irradiating the substrate with a plurality of pulses of a laser beam, the pulses having a pulse duration of less than a nanosecond and an elongate cross sectional spatial profile, and wherein the fluence of the plurality of pulses is controlled to be less than a single shot damage threshold fluence of the substrate;
providing relative movement between the laser beam and the substrate such that the plurality of pulses are arranged along a cutting path; and
controlling the relative movement such that each of the pulses is spatially overlapped with at least one other of the pulses along the cutting path.
2 . The method of claim 1 , wherein the plurality of pulses each have a fluence less than 70% of the single shot damage threshold fluence of the substrate.
3 . The method of claim 1 , wherein the plurality of pulses each have a fluence less than 50% of the single shot damage threshold fluence of the substrate.
4 . The method of claim 1 , wherein the fluence of the plurality of pulses is controlled to produce seeded micro-cracks extending a depth at most only part way through a thickness of the substrate.
5 . The method of claim 4 , wherein the fluence is controlled to minimize the depth at which the seeded micro-cracks terminate.
6 . The method of claim 1 , wherein:
a cutting depth caused by the laser irradiance is dependent on the fluence of the plurality of pulses of the laser beam;
the dependence between the fluence and cutting depth has a first fluence range in which the cutting depth decreases with decreasing fluence and a second fluence range in which the cutting depth increases with decreasing fluence, the second fluence range being at lower fluences to that of first fluence range; and
the fluence of the plurality of pulses is controlled to be within or less than the second fluence range.
7 . The method of claim 4 , wherein:
the dependence between the fluence and cutting depth has a third fluence range in which the cutting depth decreases with decreasing fluence, the third fluence range being at lower fluences to that of the second fluence range; and
the fluence of the plurality of pulses is controlled to be within the third fluence range.
8 . The method of claim 1 , wherein the elongate shape of each of the plurality of pulses has a major and a perpendicular minor axis, the length of the major axis across the elongate shape being greater than the minor axis, and wherein the plurality of pulses are oriented with respect to the substrate such that the major axis of the elongate cross section of each pulse is aligned with the length of the cutting path in the direction of relative movement between the laser beam and substrate.
9 . The method of claim 8 , wherein:
the cutting path comprises a curved portion; and
the orientation of the plurality of pulses is varied as a function of position along the cutting path within the curved portion.
10 . The method of claim 9 , wherein the major axis of the elongate cross sectional spatial profile is maintained in alignment with the cutting path.
11 . The method of claim 1 , wherein the smallest rectangular bounding box containing the elongate cross sectional spatial profile of each of the plurality of laser pulses has as aspect ratio greater than 2.
12 . The method of claim 1 , wherein the smallest rectangular bounding box containing the elongate cross sectional spatial profile of each of the plurality of laser pulses has as aspect ratio in a range between 2 and 4.
13 . The method of claim 1 , wherein providing the relative movement between the laser beam and the substrate comprises moving the laser beam along the cutting path only once in order to cut the substrate or prepare it for cleaving.
14 . The method of claim 1 , further comprising cutting the substrate.
15 . The method of claim 14 , wherein the substrate is partially cut by irradiation by the laser ablation along the cutting path, and the method of cutting further comprises applying stress to the substrate to cleave the substrate along the cutting path.
16 . The method of claim 15 , wherein any one or more of:
the stress is applied by the laser irradiation;
the stress is applied mechanically;
the stress is applied by bending the substrate;
the stress is applied by driving a rigid member against a localized region of the substrate;
the stress is applied by generating a mechanical resonance in the substrate; the stress is applied thermally; and
the stress is applied by causing a phase change within the substrate.
17 . The method of claim 14 , wherein the substrate is completely cut by the laser irradiation.
18 . An apparatus for cutting a substrate or preparing a substrate for cleaving, the apparatus comprising:
a laser system configured to:
irradiate the substrate with a plurality of pulses of a laser beam, the pulses having a pulse duration of less than a nanosecond and an elongate cross sectional spatial profile;
control the fluence of the plurality of pulses to be less than a single shot damage threshold fluence of the substrate;
provide relative movement between the laser beam and the substrate such that the plurality of pulses are arranged along a cutting path; and
control the relative movement such that each of the pluses is spatially overlapped with at least one other of the pulses along the cutting path.
19 . The apparatus of claim 18 , wherein the laser system comprises a beam rotation device arranged to rotate the laser beam pulses, the beam rotation device comprising a dove prism.
20 . The apparatus of claim 18 , wherein:
the laser system is configured to;
partially cut the thickness of the substrate and apply a stress to the substrate to cleave the substrate along the cutting path; or
completely cut the thickness of the substrate along the cutting path.