紫外、可見(jiàn)、近紅外高靈敏度制冷CCD相機(jī) ELSE-s 系列
用于紫外、可見(jiàn)近紅外的拉曼、熒光等弱光光譜應(yīng)用
- 產(chǎn)地: 德國(guó)
- 型號(hào): ELSE-s 1k128, ELSE-s 1k256, ELSE-s 2k256, ELSE-s 2k512
- 品牌: greateyes
用于紫外、可見(jiàn)近紅外的拉曼、熒光等弱光光譜應(yīng)用
公司介紹
成立于2008年的greateyes,是以德國(guó)柏林洪堡大學(xué)的技術(shù)為基礎(chǔ),迅速發(fā)展成為國(guó)際知名的先進(jìn)探測(cè)器生產(chǎn)企業(yè)。如今,其科研與工業(yè)客戶群體已遍布多個(gè)國(guó)家。
greateyes開(kāi)發(fā)、生產(chǎn)并銷售高性能科學(xué)相機(jī)。其作為精確探測(cè)器,被廣泛應(yīng)用于成像與譜學(xué)應(yīng)用領(lǐng)域。同時(shí),greateyes公司也生產(chǎn)用于太陽(yáng)能產(chǎn)業(yè)的電致熒光與光致熒光檢測(cè)系統(tǒng)。
產(chǎn)品介紹
greateyes基于獨(dú)特的平臺(tái)概念,提供約20種的相機(jī)系列,用于紫外、可見(jiàn)和近紅外的成像和光 譜應(yīng)用。深度冷卻、高品質(zhì)的CCD探測(cè)器可小化集成。高靈敏度傳感、超低噪聲電子可優(yōu)化 微弱信號(hào)的探測(cè)。采用不同的像素模式、傳感技術(shù)以及傳感涂層使成像或光譜應(yīng)用優(yōu)化。
全幀CCD傳感器集成在真空密閉腔室里,擁有多級(jí)半導(dǎo)體冷卻以及單一光學(xué)窗口。相機(jī)提供豐富的功能,例如靈活的像素聯(lián)用操作、不同的觸發(fā)和同步模式、可調(diào)的軟件基線、傳感器和散熱 系統(tǒng)的溫度監(jiān)控。
特征優(yōu)勢(shì)
結(jié)構(gòu)緊湊
靈活的聯(lián)用模式
量子化效率高達(dá)98%
滿井容量高達(dá)700.000 eˉ
深度制冷溫度低至-100°C
讀出噪聲低至3.5 eˉ
18 bit 動(dòng)態(tài)范圍
水冷和強(qiáng)制風(fēng)冷
規(guī)格參數(shù)
通用參數(shù)
讀出頻率 | 50 kHz, 250 kHz, 1 MHz, 3 MHz (5 MHz for visualization mode; up to 20 MHz with multi-output) |
讀出節(jié)點(diǎn) | 1k1k & 2k2k 相機(jī)有2個(gè)輸出節(jié)點(diǎn), 2k2k plus & 4k4k 相機(jī)有4個(gè)輸出節(jié)點(diǎn) |
AD 轉(zhuǎn)換分辨率 | 18-bit |
線性度 | 優(yōu)于 99% |
窗口材料 | 對(duì)紫外光敏感的型號(hào)為MgF 或UVFS, 其他為BK |
法蘭-焦平面距離 | 10.0 mm (1k1k, 2k2k plus & 4k4k cameras); 9mm (2k2k camera) |
溫度監(jiān)控 | 于CCD 傳感器上,及半導(dǎo)體制冷的熱端 |
數(shù)據(jù)傳輸 | 千兆以太網(wǎng)GigE,USB |
軟件 | greateyes Vision 軟件(Windows 7 / 10) |
SDK 和驅(qū)動(dòng) | DLL for Windows; LabVIEW, EPICS, Linux, Python以及Tango驅(qū)動(dòng) (可選) |
TTL 接口信號(hào) | Exposure out, shutter out, 2 external trigger in |
工作條件 | 環(huán)境溫度: 0°C to 35°C ambient, 相對(duì)濕度<80% (無(wú)結(jié)露) |
供電 | 1k1k & 2k2k: 80-264 VAC (115/230典型值), 47-63 Hz (50/60典型值), max. 1.1 A (230 V) / 1.9 A (115 V) 2k2k plus & 4k4k: 85-264 VAC (115/230典型值), 47-63 Hz (50/60典型值), max. 1.9 A (230 V) / 3.8 A (115 V) |
認(rèn)證 | CE |
尺寸 | 8.3 cm (3.27?) × 10.0 cm (3.94?) × 13.1 cm (5.16?) (W × H × L, 1k1k & 2k2k camera body) 13.7 cm (5.39?) × 13.7 cm (5.39?) × 17.1 cm (6.71?) (W × H × L, 2k2k plus & 4k4k camera body) |
重量 | 2.2 kg (1k1k & 2k2k), 5.4 kg (2k2k plus & 4k4k) |
相機(jī)型號(hào)
ELSE-s 1k128 | ELSE-s 1k256 | ELSE-s 2k256 | ELSE-s 2k512 | |||
紫外波段增強(qiáng) | OE UV BI UV2, BI UV3 | FI UV BI UV2, BI UV3 | ||||
可見(jiàn)光波段增強(qiáng) | BI MID | FI BI MID | FI | FI BI MID | ||
近紅外波段增強(qiáng) | DD NIR | FI DD DD NIR DD MU2 | DD NIR | |||
像素規(guī)格( 標(biāo)稱) | 1024 × 127 | 1024 × 255 | 2048 × 264 | 2048× 515 | ||
像素尺寸 | 26 μm × 26 μm | 15 μm × 15 μm | 13.5 μm × 13.5 μm | |||
滿井容量 | 300 keˉ (OE UV)/ 500 keˉ/ 700 keˉ(DD) | 75 keˉ | 100 keˉ | |||
讀出噪聲典型值(eˉ) @ 50 kHz | 5.5 | FI 4.2 | BI 6.0 | DD 5.7 | 3.7 | 3.5 |
可調(diào)增益 | 0.4 counts/eˉ (standard mode) | 1.5 counts/eˉ (standard mode) | 1counts/eˉ (standard mode) 0.34counts/eˉ (high capacity) | |||
暗電流(-100°C eˉ/pixel/s) | 0.0004 , 0.005 (DD) | 0.0006 | 0.00025 | |||
芯片等級(jí) | Grade 0 or grade 1 (標(biāo)準(zhǔn)) |
可選配件及軟件
典型應(yīng)用
拉曼光譜
近紅外光譜
熒光光譜
吸收、透射及反射光譜
應(yīng)用文章:
產(chǎn)品手冊(cè)
GE_ELSE_s光譜系列_datasheet 2021-5-11.pdf
性能參數(shù):
ELSE-s 1k128 | ELSE-s 1k256 | ELSE-s 2k256 | ELSE-s 2k512 | |||
紫外波段增強(qiáng) | OE UV BI UV2, BI UV3 | FI UV BI UV2, BI UV3 | ||||
可見(jiàn)光波段增強(qiáng) | BI MID | FI BI MID | FI | FI BI MID | ||
近紅外波段增強(qiáng) | DD NIR | FI DD DD NIR DD MU2 | DD NIR | |||
像素規(guī)格( 標(biāo)稱) | 1024 × 127 | 1024 × 255 | 2048 × 264 | 2048× 515 | ||
像素尺寸 | 26 μm × 26 μm | 15 μm × 15 μm | 13.5 μm × 13.5 μm | |||
滿井容量 | 300 keˉ (OE UV)/ 500 keˉ/ 700 keˉ(DD) | 75 keˉ | 100 keˉ | |||
讀出噪聲典型值(eˉ) @ 50 kHz | 5.5 | FI 4.2 | BI 6.0 | DD 5.7 | 3.7 | 3.5 |
可調(diào)增益 | 0.4 counts/eˉ (standard mode) | 1.5 counts/eˉ (standard mode) | 1counts/eˉ (standard mode) 0.34counts/eˉ (high capacity) | |||
暗電流(-100°C eˉ/pixel/s) | 0.0004 , 0.005 (DD) | 0.0006 | 0.00025 | |||
芯片等級(jí) | Grade 0 or grade 1 (標(biāo)準(zhǔn)) |
QE曲線:
典型應(yīng)用:
拉曼光譜
近紅外光譜
熒光光譜
吸收、透射及反射光譜
GE_ELSE_s光譜系列_datasheet 2021-5-11.pdf
文獻(xiàn):
1. P. Wachulak, M. Duda, A. Bartnik, A. Sarzyński, ?. W?grzyński and H. Fiedorowicz, 2-D elemental mapping of an extreme ultraviolet-irradiated PET with a compact near edge X-ray fine structure spectromicroscopy, Spectrochimica Acta Part B: Atomic Spectroscopy, Volume 145, July 2018, Pages 107-114
2. P. Wachulak, A. Bartnik and H. Fiedorowicz, Optical coherence tomography (OCT) with 2?nm axial resolution using a compact laser plasma soft X-ray source, Nature Scientific Reports, volume 8, Article number: 8494 (2018)
3. P. Wachulak, M. Duda, A. Bartnik, A. Sarzyński, ?. W?grzyński, M. Nowak, A. Jancarek and H. Fiedorowicz, Compact system for near edge X-ray fine structure (NEXAFS) spectroscopy using a laser-plasma light source, Opt. Express 26, 8260-8274 (2018)
4. A. Jonas, T. Meurer, B. Kanngie?er and I. Mantouvalou, Reflection zone plates as highly resolving broadband optics for soft X-ray laboratory spectrometers, Review of Scientific Instruments 89, 026108 (2018)
5. T. Pflug, J. Wang, M. Olbrich et al., Case study on the dynamics of ultrafast laser heating and ablation of gold thin films by ultrafast pump-probe reflectometry and ellipsometry, Appl. Phys. A (2018) 124: 116
6. C. Buerhop, S. Wirsching, A. Bemm et al. Evolution of cell cracks in PV modules under field and laboratory conditions. Prog Photovolt Res Appl. 2018;26:261–272
7. H. Stiel, J. Braenzel, A. Dehlinger, R. Jung, A. Luebcke, M. Regehly, S. Ritter, J. Tuemmler, M. Schnuerer and C. Seim, Soft x-ray nanoscale imaging using highly brilliant laboratory sources and new detector concepts, Proc. SPIE 10243, X-ray Lasers and Coherent X-ray Sources: Development and Applications, 1024309 (17 May 2017)
8. M. F. Nawaz, M. Nevrkla, A. Jancarek, A. Torrisi, T. Parkman, J. Turnova, L. Stolcova, M. Vrbova, J. Limpouch, L. Pina and P. Wachulak, Table-top water-window soft X-ray microscope using a Z-pinching capillary discharge source, JINST, 2016, Vol. 11 PO7002
9. I. Mantouvalou, K. Witte, W. Martyanov, A. Jonas, D. Gr?tzsch, C. Streeck, H. L?chel, I. Rudolph, A. Erko, H. Stiel and B. Kanngie?er, Single shot near edge x-ray absorption fine structure spectroscopy in the laboratory, Appl. Phys. Lett. 108, 201106 (2016)
10. S. Fazini?, I. Bo?i?evi? Mihali?, T. Tadi?, D. Cosic, M. Jak?i?, D. Mudronja, Wavelength dispersive μPIXE setup for the ion microprobe, Nucl. Instr. Meth. Phys. Res. Sec. B, 2015, Vol. 363, pages 61-65
11. A. Hafner, L. Anklamm, A. Firsov, A. Firsov, H. L?chel, A. Sokolov, R. Gubzhokov, and A. Erko, Reflection zone plate wavelength-dispersive spectrometer for ultra-light elements measurements, Opt. Express, 2015, Vol. 23, No. 23:29476-29483
12. P. W. Wachulak, A. Torrisi, A. Bartnik, D. Adjei, J. Kostecki, L. Wegrzynski, R. Jarocki, M. Szczurek, H. Fiedorowicz, Desktop water window microscope using a double?stream gas puff target source, Applied Physics B, 2015, 118:573–578
13. I. Mantouvalou, K. Witte, D. Gr?tzsch, M. Neitzel, S. Günther, J. Baumann, R. Jung, H. Stiehl, B. Kanngie?er, W. Sandner, High average power, highly brilliant laser-produced laser plasma source for soft X-ray spectroscopy, Review of Scientific Instruments, Vol. 86, Issue 3, 2015
14. T. Kra?hling, A. Michels,S. Geisler, S. Florek, J. Franzke, Investigations into Modeling and Further Estimation of Detection Limits of the Liquid Electrode Dielectric Barrier Discharge, Analytical Chemistry, 2014, 86(12), 5822-8