Patent classifications
H01L21/268
METHOD OF PROCESSING WORKPIECE
A method of processing a warped workpiece includes a warpage eliminating step of applying a laser beam whose wavelength is transmittable through the workpiece to the workpiece while positioning a focused spot of the laser beam in the workpiece at a predetermined first position thicknesswise across the workpiece, thereby forming modified layers in the workpiece and cracks extending from the modified layers to a lower surface of the workpiece along all of projected dicing lines on the workpiece, thereby eliminating the warpage from the workpiece, and a modified layer forming step of, after the warpage eliminating step, applying the laser beam to the workpiece while positioning the focused spot of the laser beam in the workpiece at a position above the first position away from the lower surface of the workpiece, thereby forming modified layers in the workpiece along the projected dicing lines.
METHOD OF PROCESSING WORKPIECE
A method of processing a warped workpiece includes a warpage eliminating step of applying a laser beam whose wavelength is transmittable through the workpiece to the workpiece while positioning a focused spot of the laser beam in the workpiece at a predetermined first position thicknesswise across the workpiece, thereby forming modified layers in the workpiece and cracks extending from the modified layers to a lower surface of the workpiece along all of projected dicing lines on the workpiece, thereby eliminating the warpage from the workpiece, and a modified layer forming step of, after the warpage eliminating step, applying the laser beam to the workpiece while positioning the focused spot of the laser beam in the workpiece at a position above the first position away from the lower surface of the workpiece, thereby forming modified layers in the workpiece along the projected dicing lines.
METHOD FOR PRODUCING AN OHMIC CONTACT ON A CRYSTALLOGRAPHIC C-SIDE OF A SILICON CARBIDE SUBSTRATE, AND OHMIC CONTACT
A method for producing an ohmic contact on a crystallographic C-side of a silicon carbide substrate. The method includes: applying a layer stack to the crystallographic C-side of the silicon carbide substrate, the layer stack including at least one semiconducting layer containing germanium, and at least one metallic layer; and producing a point-by-point liquid phase of the layer stack, a surface of the layer stack being scanned using laser beams.
METHOD FOR PRODUCING AN OHMIC CONTACT ON A CRYSTALLOGRAPHIC C-SIDE OF A SILICON CARBIDE SUBSTRATE, AND OHMIC CONTACT
A method for producing an ohmic contact on a crystallographic C-side of a silicon carbide substrate. The method includes: applying a layer stack to the crystallographic C-side of the silicon carbide substrate, the layer stack including at least one semiconducting layer containing germanium, and at least one metallic layer; and producing a point-by-point liquid phase of the layer stack, a surface of the layer stack being scanned using laser beams.
MANUFACTURING METHOD OF RF COMPONENTS
The present description concerns a method of manufacturing a device comprising at least one radio frequency component on a semiconductor substrate comprising: a) a laser anneal of a first thickness of the substrate on the upper surface side of the substrate; b) the forming of an insulating layer on the upper surface of the substrate; and c) the forming of said at least one radio frequency component on the insulating layer.
METHOD OF PROCESSING WAFER
A first peel-off layer extending along a side surface of a truncated cone that has a first bottom surface positioned near a face side of a wafer and a second bottom surface positioned within the wafer and smaller in diameter than the first bottom surface, and a second peel-off layer extending along the second bottom surface of the truncated cone are formed in the wafer. Then, external forces are exerted on the wafer thicknesswise of the wafer, thereby dividing the wafer along the first peel-off layer and the second peel-off layer that function as division initiating points.
METHOD OF PROCESSING WAFER
A first peel-off layer extending along a side surface of a truncated cone that has a first bottom surface positioned near a face side of a wafer and a second bottom surface positioned within the wafer and smaller in diameter than the first bottom surface, and a second peel-off layer extending along the second bottom surface of the truncated cone are formed in the wafer. Then, external forces are exerted on the wafer thicknesswise of the wafer, thereby dividing the wafer along the first peel-off layer and the second peel-off layer that function as division initiating points.
EPITAXIAL FIELD STOP REGION FOR SEMICONDUCTOR DEVICES
A semiconductor device includes a backside contact and a substrate. An epitaxial field stop region may be formed on the substrate with a graded doping profile that decreases with distance away from the substrate, and an epitaxial drift region may be formed adjacent to the epitaxial field stop region. A frontside device may be formed on the epitaxial drift region.
Backside metal patterning die singulation system and related methods
Implementations of methods of singulating a plurality of die included in a substrate may include forming a plurality of die on a first side of a substrate, forming a backside metal layer on a second side of a substrate, applying a photoresist layer over the backside metal layer, patterning the photoresist layer along a die street of the substrate, and etching through the backside metal layer located in the die street of the substrate. The substrate may be exposed through the etch. The method may also include singulating the plurality of die included in the substrate through removing a substrate material in the die street.
Backside metal patterning die singulation system and related methods
Implementations of methods of singulating a plurality of die included in a substrate may include forming a plurality of die on a first side of a substrate, forming a backside metal layer on a second side of a substrate, applying a photoresist layer over the backside metal layer, patterning the photoresist layer along a die street of the substrate, and etching through the backside metal layer located in the die street of the substrate. The substrate may be exposed through the etch. The method may also include singulating the plurality of die included in the substrate through removing a substrate material in the die street.