Abstract:
The present invention provides a method for culturing photosynthetic microalgae with which xanthophyll can be obtained more efficiently than before. The method for culturing photosynthetic microalgae of the present invention comprises: step (A) of increasing the number of cells in which light irradiation (a) of encysted photosynthetic microalgae containing xanthophyll is performed; and step (B) of increasing the xanthophyll content in photosynthetic microalgae in which light irradiation (b) of the photosynthetic microalgae subjected to the step (A) of increasing the number of cells is performed, wherein the light irradiation (a) is light irradiation using as a light source an LED including blue light having a wavelength of 400 to 490 nm, the light irradiation (b) is light irradiation using as a light source an LED including blue light having a wavelength of 400 to 490 nm and an LED including red light having a wavelength of 620 to 690 nm, and the light irradiation (a) and the light irradiation (b) are light irradiations using different light sources.
Abstract:
A plant-cultivating method is provided which comprises a red light irradiation step (A) and a blue light irradiation step (B), wherein the step (A) and the step (B) are independently carried out for a predetermined period of time under cultivation conditions such that the temperature in a cultivation atmosphere at the step (A) is lower than that at the step (B). Preferably, the temperatures in a cultivation atmosphere at the step (A) and the step (B) are in the ranges of 12° C. to 19° C. and 20° C. to 25° C., respectively.
Abstract:
A laminate including a metallic base material, a nickel-containing plating film layer formed on the metallic base material, and a gold plating film layer formed on the nickel-containing plating film layer, in which pinholes in the gold plating film layer are sealed with a fluorinated passive film having a thickness of 8 nm or greater. Also disclosed is a constituent member of a semiconductor production device including the laminate and a method for producing the laminate.
Abstract:
The present invention provides a method for culturing photosynthetic microalgae with which xanthophyll can be obtained more efficiently than before. The culture method of the present invention comprises a step of performing light irradiation of encysted photosynthetic microalgae containing xanthophyll in an amount of 3 to 9% by mass in terms of a dry mass. Preferably, in the step of performing light irradiation, the xanthophyll content in photosynthetic microalgae is kept at 2% by mass or more in terms of a dry mass. Preferably, the step of performing light irradiation includes step (A) of increasing the number of cells in which light irradiation (a) is performed; and step (B) of increasing the xanthophyll content in photosynthetic microalgae in which light irradiation (b) of the photosynthetic microalgae subjected to the step (A) of increasing the number of cells is performed.
Abstract:
A method for cultivating a fruit vegetable includes, a step that causes a flower bud differentiation by separately and independently carrying out a procedure to irradiate red light on a fruit vegetable sprout, and a procedure to irradiate blue light on the fruit vegetable sprout, and a step that irradiates light by a fluorescent lamp, or irradiates a sunbeam, or simultaneously irradiates red light and blue light on the flower bud differentiated fruit vegetable.
Abstract:
A plant-cultivating method is provided which comprises a red light irradiation step (A) and a blue light irradiation step (B), wherein the step (A) and the step (B) are independently carried out for a predetermined period of time under cultivation conditions such that amounts of nitrogen, phosphorus and potassium as fertilizer ingredients as used at the step (B) are smaller than amounts of nitrogen, phosphorus and potassium as fertilizer ingredients, respectively, as used at the step (A). Preferably, fertilizer ingredients are applied in amounts such that a growth medium at the step (B) contains 10-15 me/L of nitrogen, 1-4 me/L of phosphorus and 2-6 me/L of potassium, and a growth medium at the step (A) contains 15-20 me/L of nitrogen, 3-6 me/L of phosphorus and 6-9 me/L of potassium.
Abstract:
A plant-cultivating method is provided which comprises a red light irradiation step (A) and a blue light irradiation step (B), wherein the step (A) and the step (B) are independently carried out for a predetermined period of time under cultivation conditions such that the humidity in a cultivation atmosphere at the step (A) is higher than that at the step (B). Preferably the humidities in a cultivation atmosphere at the step (A) and the step (B) are in the ranges of 60%-90% and 40%-60%, respectively.
Abstract:
Provided is a plant cultivation lamp used in a plant cultivation method including a step of independently performing a sequence of irradiating a plant with red light and a sequence of irradiating the plant with blue light within a certain period of time, including: a light irradiation unit that includes one or more red light emitting elements that emit red light and one or more blue light emitting elements that emit blue light; and a control unit that controls the light irradiation unit to independently turn on and off the red light emitting elements and the blue light emitting elements.
Abstract:
A plant cultivation method is provided, including: a sequence of irradiating a plant with sunlight; a sequence of irradiating the plant with red light; and a sequence of irradiating the plant with blue light, in which the sequences are performed independently within a certain period of time. A plant cultivation apparatus is also provided, including: a region in which a plant is irradiated with sunlight; a light irradiation unit that irradiates the plant with artificial light including red light and/or blue light; and a control unit that controls the light irradiation unit to independently perform a step of irradiating a plant with red light and a step of irradiating the plant with blue light.
Abstract:
A laminate including a metallic base material, a nickel-containing plating film layer formed on the metallic base material, and a gold plating film layer formed on the nickel-containing plating film layer, in which pinholes in the gold plating film layer are sealed with a passive film having a thickness of 15 nm or greater. Also disclosed is a constituent member of a semiconductor production device including the laminate and a method for producing the laminate.