A61L2/26

VEHICLE SURFACE DISINFECTANT SYSTEM AND METHOD
20220409754 · 2022-12-29 ·

A vehicle surface disinfectant system includes a lighting module having at least one ultra-violet (UV) light element and at least one visible light element. The UV light element(s) and the visible light element(s) may be at least partially separately electrically actuated for the visible light element(s) to emit visible light while the UV light element(s) is off. The lighting module may be inserted into a lighting receptacle in an interior of a vehicle.

VEHICLE SURFACE DISINFECTANT SYSTEM AND METHOD
20220409754 · 2022-12-29 ·

A vehicle surface disinfectant system includes a lighting module having at least one ultra-violet (UV) light element and at least one visible light element. The UV light element(s) and the visible light element(s) may be at least partially separately electrically actuated for the visible light element(s) to emit visible light while the UV light element(s) is off. The lighting module may be inserted into a lighting receptacle in an interior of a vehicle.

Skin care device
11534509 · 2022-12-27 · ·

Provided is a skin care device including a head part brought into contact with skin of a user, a battery configured to supply power for operation of the head part, a body part having a fastening portion provided at one end to which the head part is fastened and provided with the battery therein, and a cap assembly detachably attached to one end of the body part and forming an accommodation space configured to accommodate the head part, wherein the cap assembly includes a sterilization module disposed to irradiate ultraviolet light toward the head part when the cap assembly accommodates the head part.

Flexible active species generator and use thereof

The disclosure relates to a flexible active species generator comprising: a first electrode of a conductive metal thin film; a second electrode of a ground electrode; a flexible dielectric layer of an insulator formed between the first electrode and the second electrode; and a plasma resistant functional layer formed between the dielectric layer and the second electrode, wherein the first electrode and the second electrode are electrically connected to an external power supply to generate an atmospheric pressure plasma to generate active species. The flexible active species generator has a plasma resistant function to prevent deformation and decomposition of an insulator caused by the plasma as well as an active species generating function from atmospheric pressure plasma, and has durability and safety, which is thus applicable to articles, foods, garments and human body in various forms.

Flexible active species generator and use thereof

The disclosure relates to a flexible active species generator comprising: a first electrode of a conductive metal thin film; a second electrode of a ground electrode; a flexible dielectric layer of an insulator formed between the first electrode and the second electrode; and a plasma resistant functional layer formed between the dielectric layer and the second electrode, wherein the first electrode and the second electrode are electrically connected to an external power supply to generate an atmospheric pressure plasma to generate active species. The flexible active species generator has a plasma resistant function to prevent deformation and decomposition of an insulator caused by the plasma as well as an active species generating function from atmospheric pressure plasma, and has durability and safety, which is thus applicable to articles, foods, garments and human body in various forms.

Wicking pad for evaporating fluids in a sterilizer
11534517 · 2022-12-27 · ·

A decontamination system, method, and sterilant kit for a device, such as a lumen device, is depicted. The decontamination system, in some embodiments, includes a device container, a wicking pad, and a sterilant fluid delivery device. The device container, such as a terminal package or a decontamination chamber, defines a device receiving area. The wicking pad is in fluid communication with the device receiving area. The sterilant fluid delivery device is in fluid communication with the wicking pad. The sterilant fluid delivery device is configured to wet the wicking pad with sterilant fluid. The wicking pad is configured to evaporate sterilant fluid into the device receiving area.

Wicking pad for evaporating fluids in a sterilizer
11534517 · 2022-12-27 · ·

A decontamination system, method, and sterilant kit for a device, such as a lumen device, is depicted. The decontamination system, in some embodiments, includes a device container, a wicking pad, and a sterilant fluid delivery device. The device container, such as a terminal package or a decontamination chamber, defines a device receiving area. The wicking pad is in fluid communication with the device receiving area. The sterilant fluid delivery device is in fluid communication with the wicking pad. The sterilant fluid delivery device is configured to wet the wicking pad with sterilant fluid. The wicking pad is configured to evaporate sterilant fluid into the device receiving area.

System and method for packaging a bioprocessing bag and associated components, and packaging for a bioprocessing bag

A packaging for a bioprocessing bag includes a housing having an open interior space, and a support base attached to an external side of the housing, the support base having a recess for receiving an impeller base plate of a bioprocessing bag.

System and method for packaging a bioprocessing bag and associated components, and packaging for a bioprocessing bag

A packaging for a bioprocessing bag includes a housing having an open interior space, and a support base attached to an external side of the housing, the support base having a recess for receiving an impeller base plate of a bioprocessing bag.

Sterilization of self-assembling peptides by irradiation

Gamma ray and e-beam irradiation provided efficient sterilization of certain self-assembling peptides (including RADA16 in solution) without substantial degradation of the major peptide, while, e.g., another self-assembly peptide, QLEL12 was significantly degraded following irradiation. Irradiation sterilization enhances the rheological property of, for example, RADA16 hydrogel once applied to tissue at a physiological pH. The rheological property increase can result in higher efficacy in a variety of biomedical applications.