H10D1/042

NON-VOLATILE MEMORY DEVICES WITH VERTICALLY INTEGRATED CAPACITOR ELECTRODES
20170243878 · 2017-08-24 ·

Provided is a vertical non-volatile memory device in which a capacitor constituting a peripheral circuit region is formed as a vertical type so that an area occupied by the capacitor in the entire device can be reduced as compared with a planar capacitor. Thus, a non-volatile memory device may be highly integrated and have a high capacity. The device includes a substrate having a cell region and a peripheral circuit region, a memory cell string including a plurality of vertical memory cells formed in the cell region and channel holes formed to penetrate the vertical memory cells in a first direction vertical to the substrate, an insulating layer formed in the peripheral circuit region on the substrates at substantially the same level as an upper surface of the memory cell string, and a plurality of capacitor electrodes formed on the peripheral circuit region to penetrate at least a portion of the insulating layer in the first direction, the plurality of capacitor electrodes extending parallel to the channel holes. The plurality of capacitor electrodes are spaced apart from one another in a second direction parallel to the substrate, and the insulating layer is interposed between a pair of adjacent capacitor electrodes from among the plurality of capacitor electrodes.

Method for manufacturing a trench metal insulator metal capacitor

A method for manufacturing a metal insulator metal (MIM) trench capacitor, the method may include forming a cavity in an Intermetal Dielectric stack, wherein a bottom of the cavity exposes a lower metal layer; wherein the Intermetal Dielectric stack comprises a top dielectric layer; depositing a first metal layer on a bottom of a cavity and on sidewalls of the cavity; depositing a sacrificial layer over the first metal layer; filling the cavity with a filling material; removing, by a planarization process, a portion of the sacrificial layer positioned above the top dielectric layer and a portion of the first metal layer positioned above the top dielectric layer to expose an upper portion of the sacrificial layer and an upper portion of the first metal layer; forming a recess by removing the upper portion of the sacrificial layer and the upper portion the first metal layer while using the filling material as a mask; removing the filling material by a first removal process that is selective to the sacrificial layer and to the first metal layer; removing the sacrificial layer by a second removal process that is less aggressive than the first removal process; fabricating an insulator layer on the first metal layer; and depositing a second metal layer on the insulator layer.

2D material super capacitors
09735227 · 2017-08-15 · ·

Devices and methods are described relating to capacitor energy storage devices that are small in size and have a high energy stored to volume ratio. The capacitor devices include 2D material electrodes. The capacitor devices offer very fine granularity with high stacking possibilities which may be used in super capacitors and capacitor arrays. The devices include interleaved laminations 2D material electrode layers, for example graphene, and dielectric layers, for example Hafnium Oxide. In an embodiment a capacitor device includes 10,000 layers of interleaved graphene separated by 9,999 layers of HfO. Odd layers of the graphene are electrically connected to a first terminal and even layers of graphene are electrically connected to a second terminal of the capacitor device.

METHODS OF FORMING BURIED VERTICAL CAPACITORS AND STRUCTURES FORMED THEREBY
20170221901 · 2017-08-03 ·

Methods of forming passive elements under a device layer are described. Those methods and structures may include forming at least one passive structure, such as a capacitor and a resistor structure, in a substrate, wherein the passive structures are vertically disposed within the substrate. An insulator layer is formed on a top surface of the passive structure, a device layer is formed on the insulator layer, and a contact is formed to couple a device disposed in the device layer to the at least one passive structure.

Capacitor structure and method for manufacturing the same

The present disclosure provides a capacitor structure, including a substrate having a conductive region; a trench in the conductive region and having a bottom portion and an inner sidewall portion; a spacer over the inner sidewall portion of the trench; a first conductive layer over the bottom portion and the spacer in the trench; a first dielectric layer over the first conductive layer and in the trench; a second conductive layer over the first dielectric layer and in the trench; and a second dielectric layer over the second conductive layer and in the trench, wherein the spacer comprises an angle in a range of from about 85 to about 89 degrees with respect to the bottom portion of the trench and comprises a flared opening opposite to the bottom portion of the trench. The present disclosure also provides a method for manufacturing the capacitor structure.

INTER-DIGITATED CAPACITOR IN SPLIT-GATE FLASH TECHNOLOGY
20170213841 · 2017-07-27 ·

The present disclosure relates to an integrated chip having an inter-digitated capacitor, and an associated method of formation. In some embodiments, the integrated chip has a plurality of upper electrodes separated from a substrate by a first dielectric layer. A plurality of lower electrodes vertically extend from between the plurality of upper electrodes to locations embedded within the substrate. A charge trapping dielectric layer is arranged between the substrate and the plurality of lower electrodes and between the plurality of upper electrodes and the plurality of lower electrodes. The charge trapping dielectric layer has a plurality of discrete segments respectively lining opposing sidewalls and a lower surface of one of the plurality of lower electrodes.

METHOD FOR MANUFACTURING A TRENCH METAL INSULATOR METAL CAPACITOR

A method for manufacturing a metal insulator metal (MIM) trench capacitor, the method may include forming a cavity in an Intermetal Dielectric stack, wherein a bottom of the cavity exposes a lower metal layer; wherein the Intermetal Dielectric stack comprises a top dielectric layer; depositing a first metal layer on a bottom of a cavity and on sidewalls of the cavity; depositing a sacrificial layer over the first metal layer; filling the cavity with a filling material; removing, by a planarization process, a portion of the sacrificial layer positioned above the top dielectric layer and a portion of the first metal layer positioned above the top dielectric layer to expose an upper portion of the sacrificial layer and an upper portion of the first metal layer; forming a recess by removing the upper portion of the sacrificial layer and the upper portion the first metal layer while using the filling material as a mask; removing the filling material by a first removal process that is selective to the sacrificial layer and to the first metal layer; removing the sacrificial layer by a second removal process that is less aggressive than the first removal process; fabricating an insulator layer on the first metal layer; and depositing a second metal layer on the insulator layer

SEMICONDUCTOR STRUCTURE AND FABRICATING METHOD THEREOF
20170213885 · 2017-07-27 ·

A semiconductor structure and a method of fabricating thereof are provided. The semiconductor structure includes a substrate and a capacitor structure. The substrate has a first blind hole and a trench. The first blind hole communicates with the trench. The first blind hole has a first depth, and the trench has a second depth smaller than the first depth. The capacitor structure includes a first inner conductor, a first inner insulator, and an outer conductor. The first inner conductor is in the first blind hole. The first inner insulator surrounds the first inner conductor. The outer conductor has a first portion surrounding the first inner insulator and an extending portion extending from the first portion. The first portion is in the first blind hole, and the extending portion is in the trench. The first inner conductor is separated from the outer conductor by the first inner insulator.

CAPACITOR ARRAY FORMATION USING SINGLE ETCH PROCESS

In some embodiments, the present disclosure relates to an integrated device, including a substrate; an interconnect structure disposed over the substrate, the interconnect structure including an dielectric; a first bottom electrode structure disposed in the dielectric, the first bottom electrode structure having a first width as measured between outer sidewalls of the first bottom electrode structure and a first depth as measured from an upper surface of the dielectric; and a second bottom electrode structure disposed in the dielectric and spaced apart from the first bottom electrode structure, the second bottom electrode structure having a second width as measured between outer sidewalls of the second bottom electrode structure and a second depth as measured from the upper surface of the dielectric; where the first width is greater than the second width and the first depth is greater than the second depth.

DC-to-DC converter and method for fabricating the same
09704854 · 2017-07-11 · ·

A DC-to-DC converter includes: a substrate having a switching element region defined by an isolation layer; a transistor formed over the switching element region; a landing plate formed over the isolation layer; a capacitor formed over the landing plate and includes a bottom plate, a dielectric layer and a top plate; multi-layer metal lines disposed in an upper portion of the transistor and coupled with the transistor; and an interconnection portion coupled with the multi-layer metal lines to electrically connect the transistor with the capacitor.