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Oscilloscope Buying Guide
 
 
 
 
 

PicoScope 2206B 50 MHz 2 Channel Oscilloscope

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Pico 2206B
Catalog #: PicoScope 2206B
         
5 of 5
PC Oscilloscope 2 channels with FG/AWG, 50MHz, Includes probes

Features

  • 50 MHz Bandwidth
  • 2 Channel Oscilloscope
  • 7 ns Rise time (calculated)
  • 500 MS/s Sampling rate
  • 32 MS buffer memory
  • 1 MHz AWG bandwidth
  • Built-in arbitrary waveform generator
  • USB-connected and powered
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Product Name Channels Bandwidth Sampling Rate Availability Price  
2206B
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PC Oscilloscope 2 channels with FG/AWG, 50MHz, Includes probes
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PC Oscilloscope 2 channels with FG/AWG, 100MHz, Includes probes
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2207B
2207B
PC Oscilloscope 2 channels with FG/AWG, 70MHz, Includes probes
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2406B
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2407B
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PC Oscilloscope 4 channels with FG/AWG, 100MHz, Includes probes
4 100 Mhz 1 GS/S (1000 MS/S) Availability
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2208B MSO
2208B MSO
PC Oscilloscope MSO 2 + 16 channels with FG/AWG, 100 MHz, with probes...
2 100 Mhz 1 GS/S (1000 MS/S) Availability
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2207B MSO
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PC Oscilloscope MSO 2 + 16 channels with FG/AWG, 70 MHz, with probes...
2 70 Mhz 1 GS/S (1000 MS/S) Availability
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Product Information

PicoScope 2206B 50 MHz 2 Channel Oscilloscope

 

PicoScope 2000 Series

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  • 50 MHz Bandwidth
  • 2 Channel Oscilloscope
  • 7 ns Rise time (calculated)
  • 500 MS/s Sampling rate
  • 32 MS buffer memory
  • 1 MHz AWG bandwidth
  • Built-in arbitrary waveform generator
  • USB-connected and powered













 

Introducing the PicoScope 2000 Series


The PicoScope 2000 Series offers you a choice of 2- and 4-channel oscilloscopes, plus mixed-signal oscilloscopes (MSOs) with 2 analog + 16 digital inputs. All models feature spectrum analyzers, function generators, arbitrary waveform generators and serial bus analyzers, and the MSO models also function as logic analyzers.

The PicoScope 2000A models all deliver unbeatable value for money, with excellent waveform visualization and measurement to 25 MHz for a range of analog and digital electronic and embedded system applications. They are ideal for education, hobby and field service use.

The PicoScope 2000B models have the added benefits of deep memory (up to 128 MS), higher bandwidth (up to 100 MHz) and faster waveform update rates, giving you the performance you need to carry out advanced analysis of your waveform, including serial decoding and plotting frequency against time.
 

2-channel oscilloscope: 2204A and 2205A
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2-channel oscilloscope: 2204A and 2205A

 

2-channel oscilloscope: 2206B, 2207B and 2208B
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2-channel oscilloscope: 2206B, 2207B and 2208B

 

4-channel oscilloscope
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4-channel oscilloscope

 

2+16-channel mixed-signal oscilloscope (MSO)
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2+16-channel mixed-signal oscilloscope (MSO)

  

Advanced Oscilloscope Display
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Advanced oscilloscope display

 
The PicoScope 6 software takes advantage of the display size and resolution and processing power of your PC – in this case displaying four analog signals, a zoomed view of two of the signals (undergoing serial decoding), and a spectrum view of a third, all at the same time. Unlike a conventional benchtop oscilloscope, the size of the display is limited only by the size of your computer monitor. The software is also easy to use on touch-screen devices – you can pinch to zoom and drag to scroll.

Powerful, portable and super-small
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Fast sampling

  
The PicoScope 2000 Series oscilloscopes are compact enough to fit easily into your laptop bag along with all their probes and leads. These modern alternatives to bulky benchtop devices are ideal for a wide range of applications including design, test, education, service, monitoring, fault-finding and repair and are perfect for engineers on the move.

Fast sampling
The PicoScope 2000 Series oscilloscopes provide fast real-time sampling rates of up to 1 GS/s on the analog channels: this represents a timing resolution of 1 ns.
 
For repetitive analog signals, equivalent-time sampling (ETS) mode can boost the maximum effective sampling rate up to 10 GS/s, allowing even finer resolution down to 100 ps. All scopes support pre-trigger and post-trigger capture using the full memory depth.
 
High signal integrity
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High Signal Integrity

  
Here at Pico Technology, we’re proud of the dynamic performance of our products. Careful front-end design and shielding reduce noise, crosstalk and harmonic distortion.

Decades of oscilloscope design experience can be seen in improved pulse response and bandwidth flatness.

The result is simple: when you probe a circuit, you can trust in the waveform you see on the screen.
 
High-end features as standard
Buying a PicoScope is not like making a purchase from other oscilloscope companies, where increased functionality can considerably raise the price. PicoScopes are all-inclusive instruments, with no need for expensive upgrades to unlock the hardware. Other advanced features such as resolution enhancement, mask limit testing, serial decoding, advanced triggering, automatic measurements, math channels (including the ability to plot frequency and duty cycle against time), XY mode and segmented memory are all included in the price.

USB connectivity
Pico2000B_USB_connectivityThe USB connection makes printing, copying, saving, and emailing your data from the field quick and easy. The high-speed USB interface allows fast data transfer, while USB powering removes the need to carry around a bulky external power supply.
 
Flexibility
The PicoScope software offers a breadth of advanced features via a user-friendly interface. As well as the standard Windows installation, PicoScope Beta software also works effectively on Linux and Mac operating systems, giving you the freedom to choose which platform you operate your PicoScope from.

Unique commitment to product support
Your PicoScope gets better the longer you use it, thanks to the regular free updates we supply for both the PC software and the oscilloscope firmware throughout the life of the product: the performance and functionality of the scope both keep improving, without you paying a penny more than the purchase price.

This level of support, combined with the personal service provided by our technical and sales support teams, is reflected in the consistently good feedback we get from users of our products, many of whom have gone on to be regular customers.  

PicoScope 6 software
The PicoScope software display can be as simple or as detailed as you need. Begin with a single view of one channel, and then expand the display to include up to four live channels, plus math channels and reference waveforms. 
 

PicoScope 6 software with mixed digital and analog signals
The flexibility of the PicoScope 6 software interface allows high-resolution viewing of all analog and digital channels at once, along with math channels and reference waveforms. You can use the whole of your PC’s display to view the waveforms, ensuring you never miss a detail again.
 
 

Arbitrary waveform and function generators
All PicoScope 2000 Series oscilloscopes have a built-in function generator and arbitrary waveform generator (AWG). The function generator can produce sine, square, triangle and DC level waveforms, and many more besides, while the AWG allows you to import waveforms from data files or create and modify them using the built-in graphical AWG editor.

As well as level, offset and frequency controls, advanced options allow you to sweep over a range of frequencies. Combined with the advanced spectrum mode, with options including peak hold, averaging and linear/log axes, this creates a powerful tool for testing amplifier and filter responses.
 
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Arbitrary Waveform and Function Generators


Digital triggering
Most digital oscilloscopes still use an analog trigger architecture based on comparators. This can cause time and amplitude errors that cannot always be calibrated out. The use of comparators often limits the trigger sensitivity at high bandwidths and can also create a long trigger rearm delay.

For 25 years, Pico Technology has been pioneering the use of full digital triggering using the actual digitized data. This eliminates trigger errors and allows our oscilloscopes to trigger on the smallest signals, even at the full bandwidth. All triggering is digital, resulting in a threshold resolution equal to the digitizing resolution, with programmable hysteresis and optimal waveform stability.

The reduced rearm delay provided by digital triggering, together with segmented memory, allows the capture of events that happen in rapid sequence. Rapid triggering, available on most models, can capture a new waveform every 1 or 2 microseconds, depending on the model, at the fastest timebase, until the buffer is full. The mask limit testing function helps to detect waveforms that fail to meet your specifications.

As well as the standard range of triggers found on most oscilloscopes, the PicoScope 2000 Series offers one of the best selections of advanced triggers available. These include pulse width, window and dropout triggers to help you find and capture your signal quickly.
 
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Digital Triggering

 
Color persistence modes
Advanced display modes allow you to see old and new data superimposed, with new data in a brighter color or shade. This makes it easy to see glitches and dropouts and to estimate their relative frequency. Choose between analog persistence, digital color and fast display modes or create your own custom rules.
 
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Pico 2000B Color Persistence Modes


The PicoScope 2000 Series’ use of hardware acceleration means that, in Fast Persistence mode, waveform update rates of up to 80 000 waveforms per second can be achieved (model-dependent), overlaying them all with color-coding or intensity-grading to show which areas are stable and which are intermittent. Faults that previously took minutes to find now appear within seconds.
   
Spectrum analyzer
With a click of a button, you can open a new window to display a spectrum plot of selected channels up to the bandwidth of the oscilloscope. A comprehensive range of settings gives you control over the number of spectrum bands, window types and display modes.

PicoScope software allows you to display multiple spectrum views with different channel selections and zoom factors, and see these alongside time-domain waveforms of the same data. A comprehensive set of automatic frequency-domain measurements can be added to the display, including THD, THD+N, SINAD, SNR and IMD. You can even use the AWG and spectrum mode together to perform swept scalar network analysis.
 
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Spectrum analyzer

 
Custom probe settings
The custom probes menu allows you to correct for gain, attenuation, offsets and nonlinearities of probes and transducers, or convert your waveform data to different units such as current, scaled voltage, temperature, pressure, power or dB. Definitions can be saved to disk for later use. Definitions for standard Pico Technology oscilloscope probes are built in, and you can also create your own using linear scaling or even an interpolated data table.
 
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Custom probe settings


Automatic measurements
PicoScope allows you to automatically display a table of calculated measurements for troubleshooting and analysis. Using the built-in measurement statistics you can see the average, standard deviation, maximum and minimum of each measurement as well as the live value.

You can add as many measurements as you need on each view - 15 different measurements are available in scope mode, and 11 in spectrum mode. For information on these measurements, see Automatic Measurements in the Specifications table.
 

Scope Mode
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Scope Mode

 

Spectrum Mode
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Spectrum mode



Serial decoding
The PicoScope 2000 Series oscilloscopes include serial decoding capability as standard. Display the decoded data in the format of your choice: as a graph, in a table, or both at once.
  • Graph format shows the decoded data beneath the waveform on a common time axis, with error frames marked in red. You can zoom in on these frames to investigate noise or distortion. The data packets are broken down into their component fields, making it easier than ever to locate and identify problems signals, and each packet field is assigned a different color: in the CAN bus example below, the address is colored orange, the DLC green and the data content indigo. Color coding is available in PicoScope 6.12 or later, available for download from www.picotech.com.
     
  • Table format shows a list of the decoded frames, including the data and all flags and identifiers. You can set up filtering conditions to display only the frames you are interested in, search for frames with specified properties, or define a start pattern to signal when the program should list the data.
It is also possible to link decoded numeric data to user-defined text strings, for ease of reading.

With the PicoScope 2000 Series, you can decode up to 15 serial protocols, including 1-Wire, CAN, I 2 C, I 2 S, LIN, SENT, SPI and UART/RS- 232, depending on the bandwidth and sampling rate of the oscilloscope model. Please see the specification table for the full list.

PicoScope also includes options to import and export the decoded data using a Microsoft Excel spreadsheet.  
 
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Serial decoding



Serial decoding for digital signals
The PicoScope 2000 Series MSO models bring extra power to the serial decoding features. You can decode serial data on all analog and digital inputs simultaneously, giving you up to 18 channels of data with any combination of serial protocols. For example, you can decode multiple SPI, I²C, CAN bus, LIN bus and FlexRay signals all at the same time!
 
Waveform buffer and navigator
Ever spotted a glitch on a waveform, but by the time you’ve stopped the scope it’s gone? With PicoScope you no longer need to worry about missing glitches or other transient events. PicoScope can store the last ten thousand waveforms in its circular waveform buffer.

The buffer navigator provides an efficient way of navigating and searching through waveforms, effectively letting you turn back time. Tools such as mask limit testing can also be used to scan through each waveform in the buffer looking for mask violations.

Mask limit testing
PicoScope allows you to draw a mask around any signal with user-defined tolerances. This has been designed specifically for production and debugging environments, enabling you to compare signals. Simply capture a known good signal, draw a mask around it, and then attach the system under test. PicoScope will capture any intermittent glitches and can show a failure count and other statistics in the Measurements window.

The numerical and graphical mask editors can be used separately or in combination, allowing you to enter accurate mask specifications, modify existing masks, and import and export masks as files.
 
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Mask Limit Testing


High-speed data acquisition and digitizing
The supplied drivers and software development kit (SDK) allow you to both write your own software and interface to popular third-party software packages such as National Instruments LabVIEW and MathWorks MATLAB.

The drivers support data streaming, a mode that captures gap-free continuous data over the USB port directly to the PC’s RAM or hard disk at rates of up to 1 MS/s (A models) or 9.6 MS/s (B models), so you are not limited by the size of the scope’s buffer memory. Sampling rates in streaming mode are subject to PC specifications and application loading.

Beta drivers are also available for use with Raspberry Pi, BeagleBone Black, and similar ARM-powered platforms. These drivers enable you to control your PicoScope using these small, single-board Linux computers.

Math channels
With PicoScope 6 you can perform a variety of mathematical calculations on your input signals and reference waveforms.
 
Use the built-in list for simple functions such as add and invert, or open the wizard and create complex functions involving trigonometry, exponentials, logarithms, statistics, integrals and derivatives.
 
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Math Channels

 

Plot frequency against time with PicoScope 6
All oscilloscopes can measure the frequency of a waveform, but often you need to know how that frequency changes over time, which is a difficult measurement to make.

The freq math function can do exactly this: in the example on the right, the top waveform’s frequency is being modulated by a ramp function, as plotted in the bottom waveform.

There is an additional math function to plot duty cycle in a similar way.
 
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Plot Frequency Against Time with PicoScope 6

What's In The Box

  • USB 2.0 cable
  • Two or four x1/x10 passive probes (except kits specified as without probes; 150 MHz TA132 probes illustrated below)
  • Digital input cable (MSO models only)
  • 20 logic test clips (MSO models only)
  • Quick Start Guide
  • Software and reference CD

Specifications

PicoScope 2 Channel Oscilloscopes
Model PicoScope
2204A
PicoScope
2205A
PicoScope
2206B
PicoScope
2207B
PicoScope
2208B
VERTICAL
Input channels 2
Bandwidth 10 MHz 25 MHz 50 MHz 70 MHz 100 MHz
Rise time (calculated) 35 ns 14 ns 7 ns 5 ns 3.5 ns
Input type BNC(f)
Vertical resolution 8 bits
Enhanced vertical resolution Up to 12 bits
Input sensitivity 4 mV/div to 4 V/div (10 vertical divisions)
Input ranges ±50 mV, ±100 mV, ±200 mV, ±500 mV,  ±1 V, ±2 V, ±5 V, ±10 V, ±20 V ±20 mV, ±50 mV, ±100 mV, ±200 mV, ±500 mV, ±1 V, ±2 V, ±5 V, ±10 V, ±20 V
Input coupling AC/DC
Input characteristics 1 MΩ ± 1% ∥ 14 pF ± 2 pF 1 MΩ ± 1% ∥ 16 pF ± 1 pF
DC accuracy ±3% of full scale ±200 μV
Analog offset range
(vertical position adjust)
none ±250 mV (50 mV to 200 mV ranges)
±2.5 V (500 mV to 2 V ranges)
±20 V (5 V to 20 V ranges)
Overvoltage protection ±100 V (DC + AC peak)
HORIZONTAL (TIMEBASE)
Maximum sampling rate (real-time)
1 channel
2 channel
100 MS/s
50 MS/s
200 MS/s
100 MS/s
100 MS/s
500 MS/s
250 MS/s
1 GS/s
500 MS/s
1 GS/s
500 MS/s
Maximum sampling rate (repetitive signals, ETS mode) 2 GS/s 4 GS/s 5 GS/s 10 GS/s 10 GS/s
Maximum sampling rate (continuous streaming mode) 1 MS/s 9.6 MS/s (31 MS/s with SDK)
Shortest timebase 10 ns/div 5 ns/div 2 ns/div 1 ns/div 1 ns/div
Longest timebase 5000 s/div 5000 s/div 5000 s/div 5000 s/div 5000 s/div
Buffer memory (block mode, shared  between active channels) 8 kS 16 kS 32 MS 64 MS 128 MS
Buffer memory (streaming mode, SDK) Up to available PC memory 128 000 256 000 500 000
Buffers (SDK) 1 128 000 256 000 500 000
Buffers (PicoScope software) 10 000 10 000
Timebase accuracy ±100 ppm ±50 ppm
Sample jitter 20 ps RMS typical 20 ps RMS typical 3 ps RMS typical
DYNAMIC PERFORMANCE (typical)
Crosstalk (full bandwidth) Better than 200:1 (equal ranges) Better than 400:1 (equal ranges)
Harmonic distortion < -50 dB at 100 kHz, full–scale input
SFDR (100 kHz, full-scale input, typical) > 52 dB ±20 mV range: > 44 dB
±50 mV range and higher: > 52 dB
Noise < 150 μV RMS (±50 mV range) < 200 μV RMS (±50 mV range) < 300 µV RMS  (±20 mV range)
Bandwidth flatness (at scope input) (+0.3 dB, -3 dB) from DC to full bandwidth
TRIGGERING
Sources Ch A, Ch B
Trigger modes None, auto, repeat, single None, auto, repeat, single, rapid (segmented memory)/td>
Advanced triggers Edge, window, pulse width, window pulse  width, dropout, window dropout, interval,  logic Edge, window, pulse width, window pulse width, dropout, window dropout, interval, runt pulse, logic
Trigger types, ETS Rising or falling edge Rising or falling edge (available on Ch A only)
Trigger sensitivity, real-time Digital triggering provides 1 LSB accuracy up to full bandwidth Digital triggering provides 1 LSB accuracy up to full bandwidth
Trigger sensitivity, ETS 10 mV p-p, typical, at full bandwidth 10 mV p-p, typical, at full bandwidth
Maximum pre-trigger capture 100% of capture size
Maximum post-trigger delay 4 billion samples
Trigger rearm time PC-dependent < 2 μs on fastest timebase < 1 µs on fastest timebase
Maximum trigger rate PC-dependent 10 000 waveforms in a 12 ms burst typical 10 000 waveforms in a 6 ms burst typical
Function generator
Standard output signals Sine, square, triangle, DC voltage, ramp, sinc, Gaussian, half-sine
Pseudorandom output signals None White noise, PRBS
Standard signal frequency DC to 100 kHz DC to 1 MHz
Sweep modes Up, down, dual with selectable start/stop frequencies and increments
Triggering None Free-run or up to 1 billion waveform cycles or frequency sweeps. Triggered from scope trigger or manually.
Output frequency accuracy Oscilloscope timebase accuracy ±  output frequency resolution
Output frequency resolution < 0.02 Hz < 0.01 Hz
Output voltage range ±2 V
Output adjustments Any amplitude and offset within ±2 V range
Amplitude flatness (typical) < 1 dB to 100 kHz < 0.5 dB to 1 MHz
DC accuracy ±1% of full scale
SFDR > 55 dB @ 1 kHz full–scale sine wave > 60 dB @ 10 kHz full–scale sine wave
Connector type Front panel BNC with 600 Ω output impedance
Overvoltage protection ±10 V ±20 V
ARBITRARY WAVEFORM GENERATOR
Update rate 1.548 MHz 20 MHz
Buffer size 4 kS 8 kS 32 kS
Resolution 8 bits 12 bits
Bandwidth >100 kHz >1 MHz
Rise time (10% to 90%) < 2 µs < 120 ns
SPECTRUM ANALYZER
Frequency range DC to analog bandwidth of oscilloscope
Display modes Magnitude, average, peak hold
Windowing functions Rectangular, Gaussian, triangular, Blackman, Blackman-Harris, Hamming, Hann, flat-top
Number of FFT points Selectable from 128 to half available buffer memory in powers of 2, up to a maximum of 1 048 576 points
MATH CHANNELS
Functions −x, x+y, x−y, x*y, x/y, x^y, sqrt, exp, ln, log, abs, norm, sign, sin, cos, tan, arcsin, arccos, arctan, sinh, cosh, tanh, freq, derivative, integral, min, max, average, peak, delay, duty, highpass, owpass, bandpass, bandstop
Operands A, B (input channels), C, D (input channels, 4-channel models only), T (time), reference waveforms, constants, pi, digital channels (MSO models only)
AUTOMATIC MEASUREMENTS
Scope mode AC RMS, true RMS, frequency, cycle time, duty cycle, DC average, falling rate, rising rate, low pulse width, high pulse width, fall time, rise time, minimum, maximum, peak to peak
Spectrum mode Frequency at peak, amplitude at peak, THD dB, SNR, SINAD, SFDR, total power, average amplitude at peak, THD %, THD+N, IMD,
Statistics Minimum, maximum, average and standard deviation
SERIAL DECODING
Protocols 1-Wire, ARINC 429, CAN, DCC, DMX512, FlexRay, Ethernet 10Base-T, USB 1.1, I²C, I²S, LIN, PS/2, SPI, SENT, UART/RS-232 (subject to bandwidth and sampling rate of chosen oscilloscope model) MASK LIMIT TESTING
Statistics Pass/fail, failure count, total count
DISPLAY
Interpolation Linear or sin(x)/x
Persistence modes Digital color, analog intensity, custom, fast or none
GENERAL
PC connectivity USB 2.0 (USB 3.0 compatible). USB cable included.
Power requirements Powered from USB port
Dimensions (including connectors and feet) 142 x 92 x 18.8 mm (PicoScope 2204A and 2205A only)
130 x 104 x 18.8 mm (all other models, including PicoScope 2205A MSO)
Weight < 0.2 kg (7 oz)
Temperature range, operating Operating: 0 °C to 50 °C
Temperature range, operating, for stated accuracy 15 °C to 30 °C
Temperature range, storage –20 °C to +60 °C
Humidity range, operating 5% to 80% RH non-condensing
Humidity range, storage 5% to 95% RH non-condensing
Altitude range up to 2000 m
Pollution degree 2
Safety approvals Designed to EN 61010-1:2010
Environmental approvals RoHS, WEEE
EMC approvals Tested to meet EN61326-1:2013 and FCC Part 15 Subpart B
Software included PicoScope 6 for Microsoft Windows 7, 8 (not Windows RT) and 10; 32-bit and 64-bit
SDK for Windows 7, 8 (not Windows RT) and 10; 32-bit and 64-bit
Example programs (C, Microsoft Excel VBA, LabVIEW)
Free software available for download PicoScope 6 (beta) for Linux and OS X
SDK (beta) for Linux and OS X
Languages supported Simplified Chinese, Czech, Danish, Dutch, English, Finnish, French, German, Greek, Hungarian, Italian, Japanese, Korean, Norwegian, Polish, Portuguese, Romanian, Russian, Spanish, Swedish, Turkish

Pico 2206B Product Specifications Summary:
(for full specs please see the full specs tab or the data sheet)

Oscilloscopes/PC Based Oscilloscopes Template

Channels2
Bandwidth What's This?50 Mhz
Sampling Rate What's This?500 MS/S
Bits What's This?8
Rise Time What's This?7 ns
USB PoweredYes
PowerUSB

Test Equipment General Attributes

Safety ApprovalRoHS 
Interfaces I/OAnalog Input , USB
Product Weight0.44 LBS
Product Height0.74 IN
Product Length5.12 IN
Product Width4.09 IN

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