Researchers Develop a Graphene Based Sensor to Visualize Electric Fields

As silicon-based fabrication technology is reaching its operational limits, there is increasing research attention towards developing circuits with 2D materials. The 2D materials are crystals consisting of a single layer of atoms, with their thickness ranging from a single to a few-atomic layers thick. In conventional materials, effects such as quantum tunneling become prominent as the feature lengths decrease. Therefore, 2D materials such as graphene are considered as a potential candidate for the next generation of electronic devices.

2D materials exhibit exceptional chemical and physical properties including layered structure, high-surface-area, layer-dependent, optical bandgap, and changes in chemical compositions. Due to these properties, 2D materials have improved properties and detection limits, which are very critical when sensitivity is involved.

Researchers at the University of California at Berkeley and Stanford University have developed a graphene “camera” to detect a beating heart.

Currently, for recording heartbeats, chemical dyes, and electrodes are used, which can record voltages at a single measurement point, with a sheet capable of measuring the voltage over an entire surface at once. But with their camera made from a sheet of graphene, the researchers can image all cells simultaneously, and they don’t have just a point measurement, and therefore, they don’t have to scan. With their developed sensor, they can image the entire network of cells at the same time.

“The ease with which you can image an entire region of a sample could be especially useful in the study of neural networks that have all sorts of cell types involved,” says fellow first author Allister McGuire, PhD. “If you have a fluorescently labeled cell system, you might only be targeting a certain type of neuron.”

He further added,

“Our system would allow you to capture electrical activity in all neurons and their support cells with very high integrity, which could really impact the way that people do these network level studies.”

The developed critically coupled waveguide-amplified graphene electric field (CAGE) sensor uses the field-sensitive optical transitions in graphene to convert electric potentials into the optical regime. To get real-time visualization of electric fields over an area, the sample needs to be placed on the top of a graphene sheet, which is placed above a waveguide. The laser is incident on the waveguide, through a prism, and reflects off the graphene. This makes the electric field visible in real-time.

Arrangement of sample for visualization of electric fields in real-time.

The researchers tested their sensor on a chicken heart. They used the sensor to detect native electrical activity from cardiac action potentials with a tens-of-microns resolution, simultaneously map the propagation of these potentials at tissue-scale, and monitor their modification by pharmacological agents.

“One of the things that is amazing to me about this project is that electric fields mediate chemical interactions, mediate biophysical interactions — they mediate all sorts of processes in the natural world — but we never measure them,” says Balch. “We measure current, and we measure voltage,” Balch said. “The ability to actually image electric fields gives you a look at a modality that you previously had little insight into.”

The work is described in the journal ACS Nano Letters.

Diodes Incorporated AP7347DQ LDO Voltage Regulators

Diodes Incorporated AP7347DQ LDO Voltage Regulators are based on a CMOS process and feature high output voltage accuracy, low RDS(on), and output noise. These regulators include voltage reference, error amplifiers, current limit circuits, and an enable input to turn it on and off. The AP7347DQ regulators are also available in fixed output voltage versions with an integrated resistor network. These regulators offer quiescent current as low as 60µA, 1V to 5V of fixed output voltage, and 75dB at 1kHz of ripple rejection. The AP7347DQ regulators feature -40°C to 150°C of operating junction temperature range and -40°C to 125°C of operating ambient temperature range. These regulators provide low-power consumption and line/load transient response that are well-suited for low-power handheld automotive equipment. The AP7347DQ regulators offer applications like infotainment power supplies, cameras, automotive POL in ADAS, and automotive wireless communication systems.

Features

  • 75dB at 1kHz ripple rejection
  • ±1% VOUT accuracy
  • 60µVrms from 10Hz to 100kHz of low output noise
  • With an integrated resistor network fixed output voltage versions is delivered
  • Includes voltage reference, error amplifier, and current limit circuit
  • High output voltage accuracy
  • Low RDS(on)
  • Low output noise
  • Lead-free and fully RoHS compliant
  • Halogen and Antimony free

Specifications

  • 1V to 5V of fixed VOUT
  • 500mA output current
  • 60µA quiescent current
  • 1.7V and 5.5V of minimum and maximum voltage range
  • -55°C to 150°C storage temperature range
  • -40°C to 150°C operating junction temperature range
  • 6V of input voltage

Block Diagram

Application Circuit

more information: https://www.diodes.com/part/view/AP7347DQ

NJR (New Japan Radio) NJG1816K75-TE1 Ultra Low Current SPDT Switch

NJR (New Japan Radio) NJG1816K75-TE1 Ultra Low Current SPDT Switch is a 2-bit control SPDT switch GaAs Monolithic Microwave Integrated Circuit (MMIC) suited for LPWA applications. This switch operates at low control voltage from 1.6V and is ideal for IoT devices with battery operation because of ultra-low current consumption. The NJG1816K75-TE1 ultra-low current SPDT switch is operated at -55°C to 150°C temperature range and stored at -40°C to 105°C temperature range. This switch is RoHS compliant and halogen-free. Typical applications include antenna switching, path switching, and general-purpose switching applications.

Specifications

  • 30dBm RF input power
  • 4.5V control voltage
  • 380mW power dissipation
  • -40°C to 105°C storage temperature range
  • -55°C to 150°C operating temperature range
  • 0.1μA typical low current consumption
  • 0.45dB typical @f=920MHz low insertion loss
  • 30dB typical @f=920MHz high isolation
  • 1.6V minimum low control voltage
  • 30dBm typical @f=920MHz P-0.1dB
  • 1mm x 1mm x 1mm package dimensions

Antenna Switching

Application Circuit

more information: https://www.njr.com/electronic_device/products/NJG1816K75.html

Seeed Studio Grove SSD1306 0.66″ OLED Display

Seeed Studio Grove SSD1306 0.66″ OLED display is a monochrome 64×48 resolution display with a user-friendly design and Grove I2C interface in a 20mm×20mm ultra-small package. The Grove SSD1306 0.66″ OLED Display offers a smaller screen compared to the other OLED (Organic Light Emitting Diode) displays such as the Grove SSD1315 0.96″ OLED Display. The I2C interface allows the mini display to light up with a microcontroller to display words and images. The 0.66″ display screen helps to show the information in a smaller place and is compatible as an Arduino OLED display or Raspberry Pi PLED display.

The Grove OLED Display supports the U8g2 monochrome displays library written by Olikraus. The library is so convenient and well compatible that it can support SSD1306 and other chips like SSD1315.

Seeed Studio has developed more than 300 Grove modules, covering a wide range of applications that can fulfill various needs.

Features

  • Based on SSD1306, cropped to 64 x 48 resolution (Monochrome)
  • Ultra-small size of 20mm x 20mm
  • High contrast, high brightness
  • Changeable I2C address
  • 3.3V/5V Power supply compatible
  • Low power consumption
  • Wide operating temperature range of -40℃ ~ +85℃
  • User-friendly design with Grove interface on the back

more information: https://www.seeedstudio.com/Grove-OLED-Display-0-66-SSD1306-v1-0-p-5096.html

Maxim Integrated MAX77659 SIMO Power Management IC (PMIC)

Maxim Integrated MAX77659 SIMO Power Management IC (PMIC) is optimized for rechargeable earbuds, wearables, and other applications that emphasize low supply current and small solution size. The MAX77659 features a dual-input Single-Inductor Multiple-Output (SIMO) buck-boost regulator. The device provides one charging rail and three independently programmable power rails from a single inductor to minimize the total solution size. A 100mA LDO provides ripple rejection for audio and other noise-sensitive applications. The LDO can also be configured as a load switch to manage power consumption by disconnecting external blocks when not required. A highly configurable switching charger supports a wide range of Li+ battery capacities and includes battery temperature monitoring for additional safety (JEITA).

This MAX77659 PMIC includes two GPIOs and an analog multiplexer that switches several internal voltages and current signals to an external node for monitoring with an external ADC. A bidirectional I2C serial interface allows for configuring and checking the status of the device. An internal on/off controller provides a controlled startup sequence and provides supervisory functionality for the regulator. Numerous factory programmable options allow the device to be tailored for many applications, enabling faster time to market.

The Maxim Integrated MAX77659 SIMO PMIC is offered in a compact 6.04mm x 6.04mm Wafer-Level Package (WLP) ideal for space-constrained applications.

Features

  • Highly integrated
    • 3x output, Single-Inductor Multiple-Output (SIMO) buck-boost regulator
      • Supports wide output voltage range from 5.0V to 5.5V for all SIMO channels
    • 1x 100mA LDO/LSW
    • Smart Power Selector™ Li+/Li-Poly switching charger
    • 2x GPIO resources
    • Analog MUX output for power monitoring
    • Factory-ship mode (<200nA IQ)
    • Watchdog timer
  • Charger optimized for small battery size
    • Input operating voltage from 4.0V to 5.5V
    • Programmable fast-charge current from 5mA to 300mA
    • Programmable battery regulation voltage from 6.0V to 4.6V
    • Programmable termination current from 375mA to 45mA
    • Thermal regulation and JEITA compliance
  • Low Power
    • 3μA shutdown current
    • 5μA operating current (3 SIMO channels + 1 LDO)
  • Flexible and configurable
    • I2C-compatible interface and GPIO
  • Package information
    • -40°C to +85°C operating temperature range
    • -65°C to +150°C storage temperature range
    • +150°C junction temperature
    • 6.04mm x 6.04mm WLP-30
    • 4mm pitch, 6×5 array
    • Pb-free and RoHS compliant

Application Circuit

 

more information: https://www.maximintegrated.com/en/products/power/power-management-ics/MAX77659.html

3 Channel Capacitive Touch Sensor with I2C

The project described here is a 3 channel capacitive touch sensor based on CAP1203 chip from Microchip which is a multiple-channel capacitive touch sensor controller. It has 3 x individual capacitive touch sensor inputs with programmable sensitivity for use in touch sensor applications. 3 x touchpads are provided on PCB to detect the touch. Each sensor input is calibrated to compensate for system parasitic capacitance and automatically recalibrated to compensate for gradual environmental changes. The CAP1203 includes Multiple Pattern Touch recognition that allows the user to select a specific set of buttons to be touched simultaneously. If this pattern is detected, a status bit is set and an interrupt is generated. The CAP1203 has Active and Standby states, each with its own sensor input configuration controls. Power consumption in the Standby state is dependent on the number of sensor inputs enabled as well as averaging, sampling time, and cycle time. Deep Sleep is the lowest power state available, drawing 5µA (typical) of current. In this state, no sensor inputs are active, and communications will wake the device.

Connections Connector CN2

  • Pin1 VCC 3.3V or 5V DC
  • Pin2 SCL (Arduino UNO Analog Pin A5)
  • Pin 3 SDA (Arduino UNO Analog Pin A4)
  • Pin 4 Alert Interrupt Output for SMBus
  • Pin 5 GND
Note: Refer to datasheet of CAP1203 for the operation and configuration of the chip. Arduino example code and CAP1203 library from sparkfun.com are available as downloads to test the board.

Features

  • Power Supply 3.3V or 5V DC
  • Three (3) Capacitive Touch Sensor Inputs
  • Programmable Sensitivity
  • Automatic Recalibration
  • Calibrates For Parasitic Capacitance
  • Individual Thresholds for each Button
  • Multiple Button Pattern Detection
  • Power Button Support
  • Press and Hold Features for Volume-like Applications
  • Analog Filtering for System Noise Sources
  • RF Detection and Avoidance Filters
  • Digital EMI Blocker
  • Low Power Operations 5uA Quiescent Current in Deep Sleep. 50uA In Standby (Only Chip)
  • Samples One Or More Channels in Standby
  • I2C/SMBus Compliant Communication Interface
  • 2 Easy to Mount Holes
  • Header Connector for Micro-Controller Interface
  • On-Board Power LED
  • PCB Dimensions 56.19MM X 33.90MM

Schematic

Parts List

NOQNTY.REF.DESC.MANUFACTURERSUPPLIERSUPPLIER PART NO
11CN25 PIN MALE HEADER PITCH 2.54MMWURTHDIGIKEY732-5318-ND
21C10.1uF/50V SMD SIZE 0805MURATA/YAGEODIGIKEY
31C210uF/6.3V SMD SIZE 1206MURATA/YAGEODIGIKEY
41D1LED RED SMD SIZE 0805LITE ON INCDIGIKEY160-1427-1-ND
51R11K 5% SMD SIZE 0805MURATA/YAGEODIGIKEY
63R2,R3,R410K 5% SMD SIZE 0805MURATA/YAGEODIGIKEY
71U1CAP1203 SOIC8MICROCHIPDIGIKEYCAP1203-1-SN-ND

Connections

Gerber View

Photos

Video

CAP1203 Datasheet

4 Digit Common Cathode 0.5″ – 7 Segment Display Module (Multiplexed)

This 4 Digit 7 segment display project contains 4 x Common Cathode displays, current limiting resistors or each LED segment, 4 x PNP transistors on each common cathode for multiplexing, etc. This is a very compact project that works with 5V TTL signals but can be optimized for 3.3V operations by reducing current limiting resistors values. A header connector is provided for easy interface to Arduino or other microcontrollers. All inputs are compatible with TTL 5V signals.

Multiplexed display

https://en.wikipedia.org/wiki/Multiplexed_display

  • PIN 1 NC (VCC-NO USE)
  • PIN 2 SEGMENT A
  • PIN 3 SEGMENT B
  • PIN 4 SEGMENT C
  • PIN 5 SEMENT D
  • PIN 6 SEGMENT E
  • PIN 7 SEGMENT F
  • PIN 8 SEGMENT G
  • PIN 9 DP
  • PIN 10 DISPLAY 1 CATHODE (BC847 BASE)
  • PIN 11 DISPLAY 2 CATHODE (BC847 BASE)
  • PIN 12 DISPLAY 3 CATHODE (BC847 BASE)
  • PIN 13 DISPLAY 4 CATHODE (BC847 BASE)
  • PIN 14 GND

Features

  • 7-segment CC displays
  • Multiplexed
  • 5V TTL input
  • PCB dimensions: 51.28 x 17.78 mm

Arduino test code is provided below.

Similar modules

Schematic

Parts List

NOQNTYREFDESCMANUFACTURERSUPPLIERSUPPLIER PART NO
11CN114 PIN MALE HEADER CONNECTOR PITCH 2.54MMWURTHDIGIKEY732-5334-ND
21C1DNP
34DS1,DS2,DS3,DS47-SEGMENT 0.5 OR 0.56INCH COMMON CATHODE RED OR GREEN DISPLAYSUN LEDDIGIKEY754-1705-5-ND or 754-1704-5-ND
44Q1,Q2,Q3,Q4BC847ALNEXPERIADIGIKEY1727-2924-2-ND
54R1,R2,R3,R41K 5% SMD SIZE 0805MURATA/YAGEODIGIKEY
68R5-R14220E 5% SMD SIZE 0805MURATA/YAGEODIGIKEY

Connections

Gerber View

Photos

Video

SC56-21SRWA Datasheet

2 Digit Common Cathode 0.5″ – 7 Segment Display Module (Multiplexed)

This 2 Digit 7 segment display project contains 2 x Common Cathode displays, current limiting resistors or each LED segment, 2 x PNP Transistor on each common cathode for multiplexing, etc. This is a very compact project that works with 5V TTL signals but can be optimized for 3.3V operations by reducing current limiting resistors’ value. Header connector provided for easy interface to Arduino or other microcontrollers. All inputs are compatible with TTL 5V signals.

Multiplexed display

https://en.wikipedia.org/wiki/Multiplexed_display

  • PIN 1 NC (VCC-NO USE)
  • PIN 2 SEGMENT A
  • PIN 3 SEGMENT B
  • PIN 4 SEGMENT C
  • PIN 5 SEGMENT D
  • PIN 6 SEGMENT E
  • PIN 7 SEGMENT F
  • PIN 8 SEGMENT G
  • PIN 9 DP
  • PIN 10 DISPLAY 1 CATHODE (BC847 BASE)
  • PIN 11 DISPLAY 2 CATHODE (BC847 BASE)
  • PIN 12 GND

Features

  • 7-segment CC displays
  • Multiplexed
  • 5V TTL input
  • PCB dimensions: 30.48 x 17.30 mm

Arduino test code is provided below.

Similar modules

Schematic

Parts List

NOQNTY.REFDESCMANUFACTURERSUPPLIERSUPPLIER PART NO
11CN112 PIN MALE HEADER CONNECTORWURTHDIGIKEY732-5334-ND
21C1DNP
32DS1,DS27-SEG COMMON CATHODE 0.5 OR 0.56 INCH REDSUN LEDDIGIKEY754-1705-5-ND or 754-1704-5-ND
42Q1,Q2BC847ALNEXPERIADIGIKEY1727-2924-2-ND
52R1,R21K 5% SMD SIZE 0805MURATA/YAGEODIGIKEY
68R3,R4,R5,R6,R7,R8,R9,R10220E 5% SMD SIZE 0805MURATA/YAGEODIGIKEY

Connections

Gerber View

Photos

Video

SC56-21SRWA Datasheet

Waveshare Compact PCIe With Four USB 3.2 Gen. 1 Ports for RPi CM4

If you have been using Raspberry Pi Compute Module 4, then this peripheral IO board will come in handy for many applications. With this new option for your peripheral connectivity to Raspberry Pi Computer Module 4, Waveshare’s Compact PCIe features four USB 3.2 Gen. 1 ports on the board.

There have been several IO boards for Raspberry Pi CM4 of which Jeff Geerling has posted a list of boards. This will help you choose the correct board for your application. Going back to the newly launched Waveshare’s Compact PCIe IO board, it comes with compatibility to USB 3.0/ 2.0/ 1.1. This becomes important because the design of Raspberry Pi Computer Module 4 has no USB 3.0 connectivity. However, with the exposed PCIe, the developers and makers can build their own IO boards and use them as they wish.

Features of the Waveshare Compact PCIe Board

  • USB Ports: 4 USB 3.2 Gen 1 ports
  • USB Compatibility: USB 3.0/ 2.0/ 1.1
  • Onboard chip: VL805 chip
  • Power supply: Powered by either PCIe 12V or from 12V DC header
  • Dimensions: 82 mm x 39 mm

Waveshare Compact PCIe Board

The onboard VL805 chip is very famous as a super speed USB 3.0 host controller for many USB converter boards and IO hardware. If you are looking for fewer USB ports with ethernet onboard, then Seeed Studio’s dual gigabit ethernet NICs carrier board can serve the purpose. However, for more USB ports and an easy interface, the Waveshare Compact PCIe board can become a good option at just $17.99.

With the onboard chip, the software compatibility comes easy since the VL805 chip is not new to the Raspberry Pi world. Raspberry Pi 4 single-board computer features the VL805 that is set to power save with the new firmware released in 2019. The board is set to connect horizontally rather than vertically like all other IO boards.

If you are interested in finding more information on the product, head to the official product page where you can buy the low-priced Raspberry Pi CM4 IO board.

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