Description: The chips that are classified as "working well" produce approximately 300 mV when exposed to a laser pointer and between 40 to 80 mV when illuminated by LED light. Voltages around 100 mV were recorded in a sunlit environment, while about 10 mV were noted under fluorescent lighting. Simulations indicated DC rail voltages of approximately 300 mV under 1 kW/m² of red light. The power of the laser pointer is not specified beyond being less than 5 mW; estimating the beam size to be about 15 mm² at the typical distance used on the chip, the maximum intensity received by the chip is around 333 W/m². This observation suggests that the photodiodes are generating more current than initially calculated, likely due to multiple absorptions as the beam traverses the top layer of diodes and reflects off the metal layers of the underlying tiers.
The described circuit involves photodiodes that are responsive to various light sources, including laser pointers, LED lights, sunlight, and fluorescent lighting. The performance metrics indicate that the photodiodes exhibit a significant voltage output, which varies according to the intensity and type of light source. The observation of 300 mV under a laser pointer suggests a high level of sensitivity and efficiency in converting light energy into electrical energy, particularly under focused light conditions. The lower outputs under LED and fluorescent lighting indicate a reduced sensitivity or lower intensity of these light sources compared to the laser.
The simulation results predicting DC rail voltages of around 300 mV under red light at 1 kW/m² suggest that the photodiodes are designed to operate effectively in high-intensity environments, potentially making them suitable for applications requiring precise light detection. The noted intensity of 333 W/m² from the laser pointer indicates that the photodiodes are capable of handling high power levels without saturation, which is critical for accurate measurements in varying lighting conditions.
The phenomenon of increased current generation, attributed to multiple absorptions and reflections within the photodiode structure, highlights the importance of the design of the diode layers and their arrangement. The interaction of light with the different tiers of diodes and the reflective properties of the underlying metal layers can enhance the overall efficiency of the photodiodes, making this configuration advantageous for applications in optical sensing and detection systems. The insights gained from these observations can inform future designs and improvements in photodiode technology, particularly in optimizing their performance across a range of illumination conditions.The chips that are termed "working well" yield about 300 mV under the beam from a laser pointer and between 40 to 80 mV under the LED light. Voltages around 100 mV were observed in a sunlit room and about 10 mV under fluorescent lighting. Our simulations ( see the design report in PDF ) predicted DC rail voltages of around 300 mV under 1 KW/m2 red light.
The laser pointer power isn`t specified beyond it is "< 5 mW"; estimating its beam size to be about 15 mm2 at the distance from which we have usually used it on the chip, the highest possible intensity the chip receives is around 333 W/m2. This result seems to indicate that the photodiodes are generating more current than was calculated; the disparity is probably due to multiple absorptions as the beam passes through the top tier of diodes and is reflected back from the metal layers of the tiers underneath.
Displays up to eight different DC voltages on a CRT terminal of a microprocessor under keyboard control, using BASIC commands and a BASIC routine provided in the article. Utilizes a modified Motorola MC14433 dual-lamp integrating analog-to-digital converter. An unknown voltage...
To obtain the power supply graphs on the previous page, the circuit is designed to independently monitor the power sources with the addition of a few resistors. Diode D3 allows the solar panel voltage to charge the batteries, while the...
Displays up to eight different DC voltages on a CRT terminal of a microprocessor under keyboard control, using BASIC commands and a BASIC routine provided in the article. Utilizes a modified Motorola MC14433 dual-lamp integrating analog-to-digital converter. An unknown voltage...
The circuit below is similar to the one above but can be used with a laser pointer to toggle the relay rather than a push button. The IR photo transistor Q1 (Radio Shack 276-145A) or similar is connected to the...
The laser-pointer detection circuitry is capable of identifying when a laser light is directed at a specific photosensor. If the laser targets the top sensor, the comparator chip outputs a high signal. Conversely, if the laser is aimed at the...
In circuit diagrams provided in equipment manuals, voltages at various points in the circuit are typically indicated. A deviation from these specified values suggests that a component has failed and can help in identifying faulty areas. Specifications include: D.C. Voltage...
In the silicon-controlled trigger circuit, a cadmium sulfide cell is connected to a relaxation oscillator, which serves as a sensor to activate a blinking light in a darkroom. This setup causes a speaker to emit a warning sound of Ka,...
In the silicon-controlled trigger circuit, a cadmium sulfide cell is connected to a relaxation oscillator, which serves as a sensor to activate a blinking light in a darkroom. This setup causes a speaker to emit a warning sound of Ka,...
This circuit separates an input voltage signal into its components: (1) the absolute value and (2) the polarity or 'sign' (+ or -). It is designed to handle direct current (DC) signals.
The circuit operates by utilizing operational amplifiers (op-amps) to...
We use cookies to enhance your experience, analyze traffic, and (if you allow) serve personalized ads.
By clicking Accept All, you agree to our use of cookies.
Learn more