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由在 7T 傅里叶变换离子回旋共振质谱仪中循环液氮冷却的宽带低温前置放大器产生的第一个信号。

First signal from a broadband cryogenic preamplifier cooled by circulating liquid nitrogen in a 7 T Fourier transform ion cyclotron resonance mass spectrometer.

机构信息

Korea Basic Science Institute, 804-1, Ochang 363-883, Republic of Korea.

出版信息

Anal Chem. 2012 Dec 18;84(24):10543-8. doi: 10.1021/ac302049c. Epub 2012 Nov 26.

Abstract

Despite the outstanding performance of Fourier transform ion cyclotron/mass spectrometry (FTICR/MS), the complexity of the cellular proteome or natural compounds presents considerable challenges. Sensitivity is a key performance parameter of a FTICR mass spectrometer. By improving this parameter, the dynamic range of the instrument can be increased to improve the detection signal of low-abundance compounds or fragment ion peaks. In order to improve sensitivity, a cryogenic detection system was developed by the KBSI (Korean Basic Science Institute) in collaboration with Stahl-Electronics (Mettenheim, Germany). A simple, efficient liquid circulation cooling system was designed and a cryogenic preamplifier implemented inside a FTICR mass spectrometer. This cooling system circulates a cryoliquid from a Dewar to the "liquid circulation unit" through a CF flange to cool a copper block and a cryopreamplifier; the cooling medium is subsequently exhausted into the air. The cryopreamplifier can be operated over a very wide temperature range, from room temperature to low temperature environments (4.2 K). First, ion signals detected by the cryopreamplifier using a circulating liquid nitrogen cooling system were observed and showed a signal-to-noise ratio (S/N) about 130% better than that obtained at room temperature.

摘要

尽管傅里叶变换离子回旋共振/质谱(FTICR/MS)表现出色,但细胞蛋白质组或天然化合物的复杂性仍带来了相当大的挑战。灵敏度是 FTICR 质谱仪的关键性能参数。通过提高该参数,可以增加仪器的动态范围,从而提高低丰度化合物或碎片离子峰的检测信号。为了提高灵敏度,韩国基础科学研究所(KBSI)与德国 Stahl-Electronics(梅滕海姆)合作开发了低温检测系统。设计了一种简单、高效的液体循环冷却系统,并在 FTICR 质谱仪内部实现了低温前置放大器。该冷却系统通过 CF 法兰将低温液体从杜瓦瓶循环到“液体循环单元”,以冷却铜块和低温前置放大器;随后将冷却介质排到空气中。低温前置放大器可以在非常宽的温度范围内工作,从室温到低温环境(4.2 K)。首先,使用循环液氮冷却系统检测到的低温前置放大器的离子信号,并显示出比在室温下获得的信号噪声比(S/N)约高 130%。

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