Branch Enhanced Photoacoustic Sensor for Comprehensive Sevoflurane Monitoring

IF 9.1 1区 化学 Q1 CHEMISTRY, ANALYTICAL ACS Sensors Pub Date : 2025-02-10 DOI:10.1021/acssensors.4c03063
Xueshi Zhang, Yufeng Yang, Lixian Liu, Jialiang Sun, Yi Zeng, Zhifu Yang, Xukun Yin, Xiaoming Zhao, Huiting Huan, Xiaopeng Shao, Andreas Mandelis
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Abstract

Comprehensive sevoflurane monitoring (CSM, sevoflurane concentrations from parts per billion to percent) is essential for the therapeutic diagnosis of anesthetized patients and occupational exposure monitoring. Photoacoustic spectroscopy, with its advantages of high sensitivity, wide dynamic range, miniaturization, and real-time, holds unique potential for CSM. A highly sensitive resonator with a small volume is an optimal choice regarding the limited exhaled gas amount. Wavelength modulation is not suitable for detecting trace sevoflurane with broad absorption lines because the modulation depth is far from optimal. Sensitive detection can be achieved using chopper-based amplitude modulation; therefore, a relatively low resonance frequency is critical. By the introduction of flexible polyurethane tubes, a branched photoacoustic cell (BPAC) was developed to compensate for the contradiction between the miniaturized resonator and the low resonance frequency requirement. The resonance frequency of BPAC was as low as 1036 Hz at a compact capacity of only 2.7 mL. Taking advantage of the replaceable and flexible branches, the geometry, resonance frequency, and sensitivity of BPAC could be optimized. The BPAC decoupling of the excitation and absorption paths, therefore, avoided the degradation of thermal-acoustic coupling at high concentrations. The sevoflurane detection results demonstrated that the Branch Enhanced Photoacoustic Spectroscopy (BEPAS) sensor yielded a 1σ limit of detection of 1.61 ppb with a 3 s integration time, corresponding to a normalized noise equivalent absorption coefficient of 2.2 × 10–9 cm–1 WHz–1/2. With only a 1 cm long absorption path and high thermal-acoustic coupling, the BEPAS sensor provided a wide dynamic range of 1.61 ppb to 8% (154 dB). Continuous on-site testing for CSM issues was performed, which demonstrated the stability and reliability of this sensor. The developed BEPAS may open new avenues for low resonance frequency, ultrasensitivity, wide dynamic range, and compact large-molecule gas detection.

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分支增强型光声传感器用于七氟烷综合监测
全面的七氟烷监测(CSM,七氟烷浓度从十亿分之一到百分之一)对于麻醉患者的治疗诊断和职业暴露监测至关重要。光声光谱以其高灵敏度、宽动态范围、小型化和实时性等优点,在CSM中具有独特的应用潜力。对于呼出气体量有限的情况,体积小、灵敏度高的谐振器是最佳选择。波长调制不适合用于宽吸收线的痕量七氟醚检测,因为调制深度远未达到最佳。基于斩波器的调幅可以实现灵敏的检测;因此,一个相对较低的谐振频率是至关重要的。通过引入柔性聚氨酯管,开发了支化光声电池(BPAC),弥补了谐振腔小型化与低谐振频率要求之间的矛盾。BPAC的谐振频率低至1036hz,容量仅为2.7 mL。利用可更换和柔性的支路,可以优化BPAC的几何形状、谐振频率和灵敏度。因此,激发和吸收路径的BPAC解耦避免了高浓度下热声耦合的退化。七氟烷检测结果表明,分支增强光声光谱(BEPAS)传感器的1σ检测限为1.61 ppb,积分时间为3 s,对应于归一化噪声等效吸收系数为2.2 × 10-9 cm-1 WHz-1/2。BEPAS传感器只有1厘米长的吸收路径和高热声耦合,提供1.61 ppb至8% (154 dB)的宽动态范围。对CSM问题进行了连续的现场测试,证明了该传感器的稳定性和可靠性。所开发的BEPAS可能为低共振频率、超灵敏度、宽动态范围和紧凑的大分子气体检测开辟新的途径。
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来源期刊
ACS Sensors
ACS Sensors Chemical Engineering-Bioengineering
CiteScore
14.50
自引率
3.40%
发文量
372
期刊介绍: ACS Sensors is a peer-reviewed research journal that focuses on the dissemination of new and original knowledge in the field of sensor science, particularly those that selectively sense chemical or biological species or processes. The journal covers a broad range of topics, including but not limited to biosensors, chemical sensors, gas sensors, intracellular sensors, single molecule sensors, cell chips, and microfluidic devices. It aims to publish articles that address conceptual advances in sensing technology applicable to various types of analytes or application papers that report on the use of existing sensing concepts in new ways or for new analytes.
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