摘要:
A snow blower shovel attachment apparatus for using a snow blower as a plow for wet snow includes a frame coupled to a shovel blade. The frame has a horizontal portion extending from a back face of the shovel blade and a vertical portion extending from the horizontal portion to above a top edge of the shovel blade. A plurality of attachment brackets is coupled to the frame. The plurality of attachment brackets includes a pair of upper attachment brackets coupled to a top end of the vertical portion of the frame and a pair of lower attachment brackets coupled to a bottom end of the vertical portion of the frame. The upper attachment brackets pivotably engage an auger housing of a snow blower and the lower attachment brackets selectively engage the auger housing.
摘要:
Methods and compositions are provided for the electroless deposition of NiFe on a work piece. A deposition solution for use in electroless deposition of NiFe on a work piece is formed from a nickel ion source, a ferrous iron source, a complexing agent, a reducing agent, and a pH adjusting agent. The deposition solution is substantially free from alkali metal ions. A method for fabricating a flux concentrating system for use in a magnetoelectronics device begins by providing a work piece and forming an insulating material layer overlying the work piece. A trench is formed in an insulating layer and a barrier layer is deposited within the trench. A NiFe cladding layer is deposited overlying the barrier layer. After depositing the NiFe cladding layer, the insulating material layer proximate to the trench has a concentration of alkali metal ions less than about 1×1011 atoms/cm2.
摘要翻译:提供了用于将NiFe无电沉积在工件上的方法和组合物。 用于在工件上的NiFe无电沉积中使用的沉积溶液由镍离子源,二价铁源,络合剂,还原剂和pH调节剂形成。 沉积溶液基本上不含碱金属离子。 用于制造用于磁电装置的磁通集中系统的方法开始于提供工件并形成覆盖工件的绝缘材料层。 在绝缘层中形成沟槽,并且在沟槽内沉积阻挡层。 沉积在阻挡层上的NiFe包覆层。 在沉积NiFe包覆层之后,靠近沟槽的绝缘材料层具有小于约1×10 11原子/ cm 2的碱金属离子浓度。
摘要:
A method of fabricating a cladding region for use in MRAM devices includes the formation of a conductive bit line proximate to a magnetoresistive memory device. The conductive bit line is immersed in a first bath containing dissolved ions of a first conductive material for a time sufficient to displacement plate a first barrier layer on the conductive line. The first barrier layer is then immersed in an electroless plating bath to form a flux concentrating layer on the first barrier layer. The flux concentrating layer is immersed in a second bath containing dissolved ions of a second conductive material for a time sufficient to displacement plate a second barrier layer on the flux concentrating layer.
摘要:
A method of fabricating a cladding region for use in MRAM devices includes the formation of a conductive bit line proximate to a magnetoresistive memory device. The conductive bit line is immersed in a first bath containing dissolved ions of a first conductive material for a time sufficient to displacement plate a first barrier layer on the conductive line. The first barrier layer is then immersed in an electroless plating bath to form a flux concentrating layer on the first barrier layer. The flux concentrating layer is immersed in a second bath containing dissolved ions of a second conductive material for a time sufficient to displacement plate a second barrier layer on the flux concentrating layer.
摘要:
Coated articles, electrodeposition baths, and related systems are described. The article may include a base material and a coating comprising silver formed thereon. In some embodiments, the coating comprises a silver-based alloy, such as a silver-tungsten alloy. The coating can exhibit desirable properties and characteristics such as durability (e.g., wear), hardness, corrosion resistance, and high conductivity, which may be beneficial, for example, in electrical and/or electronic applications. In some cases, the coating may be applied using an electrodeposition process.
摘要:
A method of fabricating a cladding region for use in MRAM devices includes the formation of a conductive bit line proximate to a magnetoresistive memory device. The conductive bit line is immersed in a first bath containing dissolved ions of a first conductive material for a time sufficient to displacement plate a first barrier layer on the conductive line. The first barrier layer is then immersed in an electroless plating bath to form a flux concentrating layer on the first barrier layer. The flux concentrating layer is immersed in a second bath containing dissolved ions of a second conductive material for a time sufficient to displacement plate a second barrier layer on the flux concentrating layer.
摘要:
A method for fabricating a cladded conductor (42) for use in a magnetoelectronics device is provided. The method includes providing a substrate (10) and forming a conductive barrier layer (12) overlying the substrate (10). A dielectric layer (16) is formed overlying the conductive barrier layer (12) and a conducting line (20) is formed within a portion of the dielectric layer (16). The dielectric layer (16) is removed and a flux concentrator (30) is formed overlying the conducting line (20).
摘要:
A device (200, 300) makes smudges (406), including oils and dust, unnoticeable when formed on a viewable surface (201) thereof. The device (200, 300) includes a transparent layer (202) overlying a housing (102, 104) and/or a display (110, 150). A multi-phase structure (204, 206) is disposed on the transparent layer (202), the multi-phase structure (204, 206) comprising a solid porous matrix (204) defining a plurality of pores (208), and a non-solid material (206), for example, a liquid or a gel, disposed within the pores (208).
摘要:
A lightweight portable holder for trash bags which comprises a ring set upon adjustable legs that is capable of holding disposable trash bags, preventing them from falling over and assisting in ease of cleanup.
摘要:
A micro fuel cell and method of forming such includes depositing multiple layers (22) of alternating metals over a substrate (12); etching at least one metal from the multiple layers (22) creating a void between the remaining layers; forming a plurality of pedestals (28) in the multiple layers (22), each pedestal (28) having a center anode (29) portion and a concentric cathode (31) portion separated by a concentric cavity (31); filling the concentric cavity (31) with an electrolyte; and capping the center anode (29) portion and the concentric cavity (31).