Patent classifications
B01J13/02
ARTICLES COMPRISING CORE SHELL LIQUID METAL ENCAPSULATE NETWORKS AND METHOD TO CONTROL ALTERNATING CURRENT SIGNALS AND POWER
The present invention relates to articles comprising core shell liquid metal encapsulate networks and methods of using core shell liquid metal encapsulate networks to control AC signals and power. Such method permits the skilled artisan to control the radiation, transmission, reflection and modulation of an AC signal and power. As a result, AC system properties such as operation frequency, polarization, gain, directionality, insertion loss, return loss, and impedance can be controlled under strain.
CARRIER-NANOPARTICLE COMPLEX, METHOD FOR PREPARING SAME, AND CATALYST COMPRISING SAME
The present specification relates to a carrier-nanoparticle complex, a method for preparing the same, and a catalyst comprising the same.
Method of manufacture and the use of a functional proppant for determination of subterranean fracture geometries
Proppants having added functional properties are provided, as are methods that use the proppants to track and trace the characteristics of a fracture in a geologic formation. Information obtained by the methods can be used to design a fracturing job, to increase conductivity in the fracture, and to enhance oil and gas recovery from the geologic formation. The functionalized proppants can be detected by a variety of methods utilizing, for example, an airborne magnetometer survey, ground penetrating radar, a high resolution accelerometer, a geophone, nuclear magnetic resonance, ultra-sound, impedance measurements, piezoelectric activity, radioactivity, and the like. Methods of mapping a subterranean formation are also provided and use the functionalized proppants to detect characteristics of the formation.
Method of manufacture and the use of a functional proppant for determination of subterranean fracture geometries
Proppants having added functional properties are provided, as are methods that use the proppants to track and trace the characteristics of a fracture in a geologic formation. Information obtained by the methods can be used to design a fracturing job, to increase conductivity in the fracture, and to enhance oil and gas recovery from the geologic formation. The functionalized proppants can be detected by a variety of methods utilizing, for example, an airborne magnetometer survey, ground penetrating radar, a high resolution accelerometer, a geophone, nuclear magnetic resonance, ultra-sound, impedance measurements, piezoelectric activity, radioactivity, and the like. Methods of mapping a subterranean formation are also provided and use the functionalized proppants to detect characteristics of the formation.
Polymer coated particles and methods thereof
Embodiments of the presently-disclosed subject matter include a composition that comprises a particle, a plurality of surface functional groups on a surface of the particle, and a plurality of coating polymers bound to the surface functional groups and forming a coating on the particle that includes a density ratio of about 0.1 to about 20.0, the density ratio being equal to a Flory radius of the plurality of coating polymers divided by a distance between adjacent surface functional groups. Embodiments of the presently-disclosed subject matter also include methods for making the present compositions as well as methods for using the present compositions to deliver a bioactive agent and treat a subject in need thereof.
Polymer coated particles and methods thereof
Embodiments of the presently-disclosed subject matter include a composition that comprises a particle, a plurality of surface functional groups on a surface of the particle, and a plurality of coating polymers bound to the surface functional groups and forming a coating on the particle that includes a density ratio of about 0.1 to about 20.0, the density ratio being equal to a Flory radius of the plurality of coating polymers divided by a distance between adjacent surface functional groups. Embodiments of the presently-disclosed subject matter also include methods for making the present compositions as well as methods for using the present compositions to deliver a bioactive agent and treat a subject in need thereof.
Radioactive nanoparticles and methods of making and using the same
In one aspect, radioactive nanoparticles are described herein. In some embodiments, a radioactive nanoparticle described herein comprises a metal nanoparticle core, an outer metal shell disposed over the metal nanoparticle core, and a metallic radioisotope disposed within the metal nanoparticle core or within the outer metal shell. In some cases, the radioactive nanoparticle has a size of about 30-500 nm in three dimensions. In addition, in some embodiments, the radioactive nanoparticle further comprises an inner metal shell disposed between the metal nanoparticle core and the outer metal shell. The metal nanoparticle core, outer metal shell, and inner metal shell of the radioactive nanoparticle can have various metallic compositions.
Radioactive nanoparticles and methods of making and using the same
In one aspect, radioactive nanoparticles are described herein. In some embodiments, a radioactive nanoparticle described herein comprises a metal nanoparticle core, an outer metal shell disposed over the metal nanoparticle core, and a metallic radioisotope disposed within the metal nanoparticle core or within the outer metal shell. In some cases, the radioactive nanoparticle has a size of about 30-500 nm in three dimensions. In addition, in some embodiments, the radioactive nanoparticle further comprises an inner metal shell disposed between the metal nanoparticle core and the outer metal shell. The metal nanoparticle core, outer metal shell, and inner metal shell of the radioactive nanoparticle can have various metallic compositions.
ANTIMICROBIAL COATING FOR LONG-TERM DISINFECTION OF SURFACES
Provided is an antimicrobial coating material comprising one or more biocides encapsulated in inorganic-organic shells. The antimicrobial coating material can be applied on porous materials or porous media to form and antimicrobial coating without changing the physical properties and the functions of porous materials or porous media. The coating provides a durable, multi-level antimicrobial performance at high temperature through contact-killing, release-killing, anti-adhesion and self-cleaning. Also provided is a method of producing the antimicrobial coating material.
ANTIMICROBIAL COATING FOR LONG-TERM DISINFECTION OF SURFACES
Provided is an antimicrobial coating material comprising one or more biocides encapsulated in inorganic-organic shells. The antimicrobial coating material can be applied on porous materials or porous media to form and antimicrobial coating without changing the physical properties and the functions of porous materials or porous media. The coating provides a durable, multi-level antimicrobial performance at high temperature through contact-killing, release-killing, anti-adhesion and self-cleaning. Also provided is a method of producing the antimicrobial coating material.