Abstract:
The present disclosure is drawn to a multi-chamber container and related methods for storing and mixing liquids and associated methods of use. The multi-chamber container includes a first chamber configured to contain a first liquid composition. The multi-chamber container also includes a second chamber configured to contain a second liquid composition. The multi-chamber container further includes a membrane separating the first liquid composition and the second liquid composition. The membrane is puncturable to facilitate contact of the first liquid composition and the second liquid composition. Additionally, the multi-chamber container includes a plunger operable to puncture the membrane. The plunger can be configured to move through an opening of the first chamber opposite the membrane to facilitate puncture of the membrane.
Abstract:
The present disclosure is drawn to disinfectant hand sanitizing compositions. In one embodiment, a hand sanitizing compositions can include from 10 to 1500 ppm colloidal silver, from 0.01 wt % to 30 wt % alcohol, at least 70 wt % water, and a thickening agent. The hand sanitizers can provide continued sanitization for an extended period of time and can be formulated to be dispensed as self-supporting foams.
Abstract:
The present invention is drawn to methods and compositions for use in partially or fully decontaminating surfaces which have been contaminated with chemical or biological warfare agents. The invention includes contacting the contaminated surface with a composition capable of ameliorating the negative effects caused by the warfare agent. In one embodiment, the composition includes an aqueous vehicle of water and from 0.001 wt % to 40.0 wt % of a peroxygen. Additionally, the composition can include from 0.001 ppm to 50,000 ppm by weight of a transition metal based on the aqueous vehicle content. Optionally, an alcohol can be included in the composition. In one embodiment, the transition metal can be in the form of a colloidal transition metal, such as colloidal silver.
Abstract:
The present invention is drawn to disinfectant systems and methods which can be used to produce a disinfectant solution. The system can include a first liquid composition and a second liquid composition. The first liquid composition comprises from 0.0005 ppm to 100,000 ppm by weight of a transition metal or alloy and an alcohol, and the second liquid composition comprises water and a peroxygen compound. The first and second liquid compositions are formulated to be combined so as to yield a resultant disinfectant solution. The disinfectant solution can be used to disinfect a variety of surfaces and even liquid compositions.
Abstract:
Systems and methods for disinfecting medical instruments are provided. In one embodiment, a system can include a hood to provide a clean zone, a chamber to dispose within the clean zone, and an ultrasonicator. More specifically, the chamber can include a volume and can be configured to retain a fluid and receive medical instruments. The chamber can also include a portal through which fluids enter or leave the chamber. The ultrasonicator can be used to sonicate the volume when the fluid is present. A related method of disinfecting medical instruments can be accomplished using the systems of the present disclosure.
Abstract:
The present invention is drawn to disinfectant or sterilant compositions, which are human safe, e.g., food grade, food safe, or skin safe, etc. In one embodiment, an aqueous disinfectant or sterilant composition can comprise an aqueous vehicle, including water, from 0.001 wt % to 50 wt % of a peracid, and from 0.001 wt % to 25 wt % of a peroxide. Additionally, from 0.001 ppm to 50,000 ppm by weight of a transition metal or alloy thereof based on the aqueous vehicle content can also be present. The disinfectant composition can be used in the manufacture and formulation of products for human use or consumption including disinfectant mouthwashes, toothpastes, gums, ointments, and soaps.
Abstract:
The present disclosure is drawn to methods of destroying genetic material in laboratory environments. Steps include contacting a surface in a genetic laboratory that is contaminated with genetic material with a decontaminant composition comprising a transition metal or alloy thereof, an alcohol, a peroxygen, and water; and maintaining contact between the decontaminant composition and the surface for a sufficient period of time to provide a reduction in genetic material on the surface.
Abstract:
Systems and methods for disinfecting medical instruments are provided. In one embodiment, a system can include a hood to provide a clean zone, a chamber to dispose within the clean zone, and an ultrasonicator. More specifically, the chamber can include a volume and can be configured to retain a fluid and receive medical instruments. The chamber can also include a portal through which fluids enter or leave the chamber. The ultrasonicator can be used to sonicate the volume when the fluid is present. A related method of disinfecting medical instruments can be accomplished using the systems of the present disclosure.
Abstract:
The present invention is drawn to disinfectant or sterilant compositions, which are human safe, e.g., food grade or food safe. In one embodiment, an aqueous disinfectant or sterilant composition can comprise an aqueous vehicle, including water, from 0.001 wt % to 50 wt % of a peracid, and from 0.001 wt % to 25 wt % of a peroxide. Additionally, from 0.001 ppm to 50,000 ppm by weight of a transition metal based on the aqueous vehicle content can also be present. The composition can be substantially free of aldehydes. Alternatively or additionally, the transition metal can be in the form of a colloidal transition metal.
Abstract:
The present invention is drawn to disinfectant or sterilant compositions, which are human safe, e.g., food grade or food safe. In one embodiment, an aqueous disinfectant or sterilant composition can comprise an aqueous vehicle, including water, from 0.001 wt % to 50 wt % of a peracid, and from 0.001 wt % to 25 wt % of a peroxide. Additionally, from 0.001 ppm to 50,000 ppm by weight of a transition metal based on the aqueous vehicle content can also be present. The composition can be formulated to include only food-grade ingredients. Alternatively or additionally, the transition metal can be in the form of a colloidal transition metal.