1. Catalogs
  2. Andor Technology
  3. High Energy Detection_2014

High Energy Detection_2014

High Energy Detection_2014
1 / 28 PagesView full catalog

High Energy Detection_2014

Product catalog summary
Overview
Andor's high energy camera detection systems are designed for diverse imaging and spectroscopy applications, such as cell structure studies, medical research, and material analysis. These systems operate at various energy levels and can be customized to meet specific experimental needs.
Detection Beyond The Visible
Andor's solutions cover a wide wavelength range, including VUV, EUV, X-Ray, and gamma regions, using direct or indirect detection methods.
High Energy Detection
Detection methods include direct detection, where photons are absorbed directly by the sensor, and indirect detection, which uses scintillators to convert high energy photons to visible wavelengths.
The Interfaces
Andor offers interfaces like 'Open Front', 'Fiber-Optic', and 'Stand Alone' designs, tailored for different energy ranges and detection methods.
The Camera Platforms
Andor provides various camera platforms, including Zyla sCMOS, Newton CCD, iXon EMCCD, iKon L CCD, and iKon M CCD, each with unique features for high energy detection.
Extending Andor’s ‘Standard’ Cameras
Standard cameras can be customized with a MgF2 window to extend detection into the UV range, with options like Lumogen coated and Enhanced silicon sensors.
Focus On High Energy Spectroscopy
Andor's spectroscopy systems combine CCD and Intensified CCD detectors with spectral instruments for high-energy applications, designed for ease of use and high performance.
Conclusion
Andor's high energy detection solutions are versatile and customizable, engineered for durability and high performance in various scenarios.
Customer Special Request (CSR) Service
Andor offers bespoke services for demanding applications, providing customer-specific solutions through a dedicated team.
High Energy Camera Capabilities
Andor provides high-performance camera platforms adaptable to various high-energy photon detection applications, including direct and indirect detection cameras.
Defining a Solution
Building an optimal detection solution involves decisions on energy range, interface, and camera platform attributes like field of view and frame rate.
Software Solutions
Andor offers software solutions like Andor Solis for data acquisition and image analysis, and an SDK for custom application integration.
Accessories
Andor provides accessories like custom mounting flanges and chillers to complement high-energy detection products.
Application and Technical Notes
Andor's platforms are used in applications like monochromatizing femtosecond high-order harmonic VUV photon sources and sample analysis with grazing incidence XUV reflectometers.
Experimental Setup and Results
Experiments demonstrate high sensitivity and resolution capabilities in applications like XUV spectroscopy, providing insights into optical properties and quantum efficiency.
Introduction
The document discusses the use of ultra-intense laser pulses for developing compact particle accelerators, generating quasi-monoenergetic electron beams and intense X-Rays.
Single Event Spectroscopy on Laser Generated X-Ray Beams
The setup uses the JETI laser system to focus on a helium gas jet, generating X-Rays recorded by a CCD, allowing correlation of electron energy spectra with emitted photon energy.
Experimental Results
Over 10,000 single shot images were taken, reconstructing typical X-Ray spectra with photon energies up to 10 keV.
Summary and Outlook
Initial experiments demonstrated broadband betatron radiation generation, with future work aiming for higher photon energies and ultrafast time-resolved absorption spectroscopy.
Table-top Coherent X-Ray Source
The document describes the development of X-Ray free-electron laser sources and ultrafast high harmonic X-Rays, with challenges in developing phase matching techniques.
Experimental Setup and Results
The experiment used a novel OPCPA architecture to generate 3.9 μm pulses, achieving phase-matched emission extending to >1.6 keV.
Conclusion
The study demonstrated fully phase-matched X-Ray generation in the kiloelectronvolt region, enabling static and ultrafast bio- and nano-imaging.
Calibrated Compact Soft X-Ray Spectrometer
The document details a compact spectrometer setup for characterizing laser-produced plasmas, achieving an average error of less than 5% in the photon energy range of 70 - 1900 eV.
Application
The spectrometer is used for measuring absolute photon numbers in laser-produced plasma sources, crucial for applications like EUV lithography and X-Ray microscopy.
Introduction
The document discusses advancements in spectrometry and imaging techniques, focusing on compact transmission grating spectrometers and CCD cameras for scientific applications.
Compact Transmission Grating Spectrometer
This section describes the application of a compact transmission grating spectrometer in experiments with a liquid nitrogen jet target system.
Time-Resolved X-Ray Diffraction
The document outlines a setup for time-resolved X-Ray diffraction using a pulsed femtosecond X-Ray source.
Extreme Ultraviolet Spectroscopy for Plasma Research
This section focuses on the use of the Andor DO420-BN CCD camera for EUV spectroscopy in plasma research.
Neutron Imaging
Neutron imaging is presented as a complementary technique to X-Ray imaging, offering insights into the inner structure and composition of objects.
Conclusion
The document highlights the importance of advanced spectrometry and imaging technologies in scientific research.
Neutron Imaging Technique
Neutron imaging, including radiography and tomography, is used to visualize the internal structure of objects by placing them in the path of a neutron beam.
Camera Solutions for Neutron Radiography/Tomography
Traditional CCD cameras have been used for neutron tomography, with sCMOS and EMCCD cameras recommended for faster framing applications.
Case Studies
1. Non-Destructive Testing (NDT): Neutron tomography allows for the non-destructive examination of objects.
2. In-situ Testing: Neutron imaging can inspect components like sprinkler nozzles in their installed state.
3. Investigating Organic Material: Neutron imaging is effective for examining organic materials.
Technical Notes on CCD and Binning
CCD cameras can be manipulated for various effects, such as binning, which improves readout speed and signal-to-noise ratio.
Cropped Mode
Cropped mode allows for faster frame rates by defining a smaller active imaging area on the sensor.
Quantum Efficiency (QE)
The QE of a CCD is influenced by the absorption of photons in the sensor's depletion region.
Two-Step Detection and Indirect Detection Methods
For high-energy photons, CCDs require a scintillator to convert X-ray photons into visible light.
Introduction
This document discusses various methods and technologies related to X-ray detection and imaging using CCD cameras.
Indirect Detection and Lens-Based Systems
Indirect detection involves using lens-based camera systems to image scintillator screens.
Direct Detection
Direct detection occurs when photons are absorbed within the CCD's silicon, generating electron-hole pairs.
Energy Resolution
Energy resolution measures the ability to resolve individual energy lines.
Camera Specifications
The document lists various CCD and sCMOS camera models, detailing their specifications.
Research Applications
The document references numerous research papers utilizing these imaging technologies.
Conclusion
Andor's commitment to optimizing camera performance is highlighted.
Introduction
This document provides guidelines for maintaining Andor detection solutions.
Contact Information
Andor Technology has offices in Northern Ireland, North America, Japan, and China.
Customer Support Services
Andor offers a variety of customer support services to maximize product performance.
Trademarks and Specifications
Andor®, the Andor logo, and iXon® are trademarks of Andor Technology Ltd.
See more

Catalog excerpts

High Energy Detection_2014-1

an Oxford Instruments company High Energy Detection Solutions Beyond The Visible

 Open the catalog to page 1
High Energy Detection_2014-2

Contents 03 Overview 04 Detection Beyond The Visible 06 High Energy Detection 09 The Interfaces 10 O - ‘Open Front’ 11 F - ‘Fiber-Optic’ 12 Y - ‘Stand Alone’ 13 The Camera Platforms 14 Extending Andor’s ‘Standard’ Cameras For High Energy Detection 15 Standard Ultra Sensitive Cameras For Lens Coupled Indirect Detection 16 Focus On High Energy Spectroscopy 19 Customer Special Request (CSR) 20 High Energy Camera Capabilities 22 Defining A Solution 24 Software Solutions 25 Accessories 26 Application and Technical Notes 48 Standard Part Numbers 50 Research Papers 53 Looking After Your System Overview...

 Open the catalog to page 2
High Energy Detection_2014-3

Detection Beyond The Visible Typical Application Andor’s high energy camera solutions cover a broad wavelength range, spanning VUV, EUV, X-Ray and gamma regions. Detection is achieved either through direct detection of the high energy photon by the sensor or by indirect detection of visible photons emitted from a phosphor or scintillator, either a fiber-optic or a lens coupled to the detector. Soft X-Ray Imaging / Microscopy Soft to Hard X-Ray X-Ray Spectroscopy (e.g. SAXA), Plasma Diagnostics Hard X-Ray Diffraction / Crystallography, Phase Contrast Imaging Hard X-Ray to Gamma Gamma Tomography...

 Open the catalog to page 3
High Energy Detection_2014-4

High Energy Detection The two main methods of detecting high energy photons with scientific cameras are ‘Direct’ and ‘Indirect’ detection. Direct Detection Indirect Detection Andor employs the notation ‘S’ to indicate cameras that are optimal for detection of ‘soft’ lower energy photons. With direct detection, the incident VUV to soft X-Ray photon is absorbed directly within the silicon of the sensor resulting in the production of multiple electron-hole pairs. This method of detection limits the range of usage of the sensor to photon energies that silicon can absorb directly, as shown in Fig....

 Open the catalog to page 4
High Energy Detection_2014-5

The Interfaces Andor has a comprehensive portfolio of imaging and spectroscopic camera platforms developed for use in a wide range of high energy applications. To suit these many different requirements it is often necessary to modify the camera’s interface to allow optimal integration with the sampling environment. The large area X-Ray Andor CCD system has been used to acquire much more data on each shot, enabling researchers using the Central Laser Facilities to make significantly faster progress than previously possible. This section highlights Andor’s dedicated range of interface types and...

 Open the catalog to page 5
High Energy Detection_2014-6

Interface - ‘Open Front’ design Interface - ‘Fiber-Optic’ design Andor’s ’O’ interface type describes an open front design, coupling directly onto a vacuum chamber’s port, ensuring maximum detection efficiency and spatial resolution. A number of Andor’s camera platforms can be configured with the ‘F’ type protruding fiberoptic interface, ideal for indirect detection of high energy X-Ray or gamma photons that are incident on a phosphor or scintillator. ‘Open front’ cameras are designed to be coupled to the outside of a vacuum chamber. There are two types of sealing options available: knife edge...

 Open the catalog to page 6
High Energy Detection_2014-7

Interface - ‘Stand Alone’ design Andor’s ‘Y’ style interface is available across the iKon and Newton CCD camera platforms, and is built with a window that blocks visible wavelengths but allows higher energy photons through to the sensor. It is ideal for direct detection in the soft X-Ray energy range or, with inclusion of a phosphor coated fiber-optic, for indirect detection of hard X-Ray photons. Description Compact sCMOS platform, multi megapixel array, lownoise, ultra fast frame rates and high resolution imaging. High performance CCD camera with variable readout rates up to 3 MHz through plug...

 Open the catalog to page 7
High Energy Detection_2014-8

Extending Andor’s ‘Standard’ Cameras For High Energy Detection Standard Ultra Sensitive Cameras For Lens Coupled Indirect Detection Many applications require use of lens based cameras within indirect detection systems, where a ‘stand alone’ camera solution images a scintillator screen. Such applications include both X-Ray and Neutron Tomography. Extending to the ‘UV’ Andor’s standard range of ultra-sensitive imaging and spectroscopy camera platforms can be readily customized with a MgF2 window, extending detection in the UV down to ~120 nm. Note, Features the system performance is also dependent...

 Open the catalog to page 8
High Energy Detection_2014-9

Focus On High Energy Spectroscopy Engineered from the outset with ease-of-use and performance in mind, Andor’s Spectroscopy systems feature a combination of market leading CCD, Intensified CCD detectors and UV-NIR spectral instruments. iStar ICCD Typical Applications X-Ray Diffraction (XRD) X-Ray plasma physics X-Ray laser characterization USB 2.0 platform, with a unique software controlled, ultra-low-jitter on-board Digital Delay Generator (DDG™) and high-voltage, high-speed gating electronics for < 2 ns time resolution down to 120 nm. Andor’s vacuum-compatible CCDs and Intensified CCDs combine...

 Open the catalog to page 9
High Energy Detection_2014-10

Customer Special Request (CSR) At Andor we realise that, sometimes, even our adaptable and flexible off-the-shelf products are not enough to meet some of the more demanding application requirements of our customers. A CSR solution can encompass a complete system, a single camera or an accessory. Here are some examples of Andor’s CSR capabilities. For this reason we provide a bespoke service to our customers, whereby a dedicated highly experienced team of engineers and application specialists provide customer specific solutions. The process involves discussing your core requirements, advising...

 Open the catalog to page 10
High Energy Detection_2014-11

High Energy Camera Capabilities The following diagram can be used as a guide to Andor’s broad capabilities in the area of high energy photon detection, demonstrating our ability to adapt our various highperformance camera platforms to meet a broad gamut of specific application and set-up requirements. S Direct Detection Cameras O Open Front Systems H Indirect Detection Cameras Y Stand Alone Systems F Fiber Optic Interface Many of the camera types represented are available as standard products, as represented on page 50 of this brochure. Please use Andor’s Customer Special Request (CSR) service...

 Open the catalog to page 11
*Prices are pre-tax. They exclude delivery charges and customs duties and do not include additional charges for installation or activation options. Prices are indicative only and may vary by country, with changes to the cost of raw materials and exchange rates.