Abstract:
FIG. 1 is a front elevational view of a charger showing my new design; FIG. 2 is a rear elevational view thereof; FIG. 3 is a left side view thereof; FIG. 4 is a right side view thereof; FIG. 5 is a top plan view thereof; FIG. 6 is a bottom plan view thereof; FIG. 7 is a perspective view thereof; FIG. 8 is a second perspective view thereof; FIG. 9 is a third perspective view thereof; and, FIG. 10 is a fourth perspective view thereof. The broken lines shown in charger form no part of the claimed design.
Abstract:
A method for making a composite carbon nanotube structure includes the following steps. An organic solvent, a polymer, and a carbon nanotube structure are provided. The polymer is dissolved in the organic solvent to obtain a polymer solution. The carbon nanotube film structure is soaked with the polymer solution. A contact angle between the organic solvent and a carbon nanotube is less than 90 degrees.
Abstract:
A surface-enhanced Raman scattering substrate includes a carbon nanotube film structure and a plurality of metallic particles disposed on the carbon nanotube film structure. The carbon nanotube film structure includes a number of carbon nanotubes joined by van der Waals attractive force therebetween. The carbon nanotube film structure is a free-standing structure.
Abstract:
The isolated Agrocybe aegerita lectin AAL-2 is able to inhibit the growth of tumor cells by inducing apoptosis. In the animal study, the Agrocybe aegerita lectin AAL-2 has been showed to be capable for tumor therapy. Furthermore, the AAL-2 preferentially binds to the carbohydrate or glycoproteins with its N-Acetylglucosamine, which can be used for diagnosing the N-Acetylglucosamine-associated diseases or detecting N-Acetylglucosamine-modified carbohydrates.
Abstract:
A bear bile macromolecular extract with anti-HCV virus function is disclosed. A preparation method comprises the following steps of: taking fresh bear bile or dissolving bear bile powder with water, centrifuging it by a molecular sieve filter membrane with molecular weight cut-off of 100,000 or an ultrafiltration membrane, filtering to obtain sediment, dissolving the sediment with water, adding the solution to sephadex column, separating the solution by using water or buffer as elution solvent, and freeze-drying the eluent to obtain the bear bile macromolecular extract. Experiments show that the bear bile macromolecular extract has anti-HCV virus function and can be used for treating hepatitis C.
Abstract:
The present disclosure relates to a method for making a transparent carbon nanotube composite film. The method includes: (a) providing a transparent carbon nanotube film structure; (b) fixing the transparent carbon nanotube film structure on a supporting; (c) immersing the transparent carbon nanotube film structure with the supporting into a transparent polymer solution; and (d) removing the transparent carbon nanotube film structure with the supporting from the transparent polymer solution, thereby forming the transparent carbon nanotube composite film. A light transmittance of the transparent carbon nanotube composite film structure is higher than a light transmittance of the transparent carbon nanotube film structure.
Abstract:
A method for making a composite carbon nanotube structure includes the following steps. An organic solvent, a polymer, and a carbon nanotube structure are provided. The polymer is dissolved in the organic solvent to obtain a polymer solution. The carbon nanotube film structure is soaked with the polymer solution. A contact angle between the organic solvent and a carbon nanotube is less than 90 degrees.
Abstract:
A carbon nanotube composite includes a free-standing carbon nanotube structure and an amount of reinforcements. The free-standing carbon nanotube structure includes an amount of carbon nanotubes. The reinforcements are located on the carbon nanotubes and combining the carbon nanotubes together.
Abstract:
A surface-enhanced Raman scattering substrate includes a carbon nanotube film structure and a plurality of metallic particles disposed on the carbon nanotube film structure. The carbon nanotube film structure includes a number of carbon nanotubes joined by van der Waals attractive force therebetween. The carbon nanotube film structure is a free-standing structure.
Abstract:
A Raman detecting system for detecting a vapor of an explosive includes a surface-enhanced Raman scattering substrate for absorbing the vapor of the explosive. The substrate includes a carbon nanotube film structure and a plurality of metallic particles disposed on the carbon nanotube film structure. The carbon nanotube film structure includes a plurality of stacked carbon nanotube films.