摘要:
A self healing high energy glass capacitor is provided. The capacitor can have a glass layer with a top surface and a bottom surface. A top sacrificial layer can extend across the top surface and a bottom sacrificial layer can extend across the bottom surface. In addition, a top electrode can extend across the top sacrificial layer and a bottom electrode can extend across the bottom sacrificial layer. In some instances the glass capacitor has an energy breakdown of at least 6 joules per cubic centimeter.
摘要:
A multicapillary column especially useful for liquid chromatography and sample preparation comprising a plurality of uniform capillaries coated with an insoluble stationary phase, wherein the thickness of the stationary phase is correlated with the radius of the individual capillaries for high efficiency.
摘要:
A multicapillary column especially useful for liquid chromatography and sample preparation comprising a plurality of uniform capillaries coated with an insoluble stationary phase, wherein the thickness of the stationary phase is correlated with the radius of the individual capillaries for high efficiency.
摘要:
A multicapillary sample preparation device, especially useful for handling biological samples, comprising a plurality of uniform capillary tubes coated with a stationary phase, and arranged in a monolithic element. The multicapillary device is suitable for attachment to a pipette, micropipette, syringe, or other analytical or sample preparation instrument.
摘要:
Structures for making and using a drawn preform from a plurality of tubes are provided. The drawn preform includes a first end of the preform defining source side of the preform and a second end of the preform defining a delivery side of the preform. At least some tubes of the plurality of tubes of the second end of the preform are drawn to a dimension of at least less than one micron in size. The drawn preform is capable of manipulating materials (e.g., fluids, chemicals, biological samples, solids, inks, etc.) as the materials go through the tubes from a source end to the delivery end, or when the material is already present within one of the tubes.
摘要:
A self healing high energy glass capacitor is provided. The capacitor can have a glass layer with a top surface and a bottom surface. A top sacrificial layer can extend across the top surface and a bottom sacrificial layer can extend across the bottom surface. In addition, a top electrode can extend across the top sacrificial layer and a bottom electrode can extend across the bottom sacrificial layer. In some instances the glass capacitor has an energy breakdown of at least 6 joules per cubic centimeter.
摘要:
Structures and method for making, using and implementing a drawn preform from a plurality of tubes are provided. The drawn preform includes a first end of the preform defining source side of the preform and a second end of the preform defining a delivery side of the preform. At least some tubes of the plurality of tubes of the second end of the preform are drawn to a dimension of at least less than one micron in size. The drawn preform is capable of including conductors integrated with the tubes, and the conductors enable manipulation of materials (e.g., fluids, chemicals, biological samples, solids, inks, etc.) as the go through the tubes from a source end to the delivery end, or when the material is already present on a target substrate or receiving cell or material.
摘要:
The present invention provides a method for the synthesis of unagglomerated, highly dispersed, stable core/shell nanocomposite particles comprised of preparing a reverse micelle microemulsion that contains nanocomposite particles, treating the microemulsion with a silane coupling agent, breaking the microemulsion to form a suspension of the nanocomposite particles by adding an acid/alcohol solution to the microemulsion that maintains the suspension of nanocomposite particles at a pH of between about 6 and 7, and simultaneously washing and dispersing the suspension of nanocomposite particles, preferably with a size exclusion HPLC system modified to ensure unagglomeration of the nanocomposite particles. The primary particle size of the nanocomposite particles can range in diameter from between about 1 to 100 nm, preferably from between about 10 to 50 nm, more preferably about 10 to 20 nm, and most preferably about 20 nm.