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Pusan National University Researchers Develop Fast-Responding Colorimetric Sensor With Expanded Color Gamut for Real-time Monitoring

Pusan National University Researchers Develop Fast-Responding Colorimetric Sensor With Expanded Color Gamut for Real-time Monitoring

釜山國立大學研究人員開發了響應速度快、顏色可視化傳感器,能擴大顏色範圍,用於實時監測
PR Newswire ·  10/18 20:38

The innovative nanostructured Fano resonant colorimetric sensor boasts enhanced responsiveness and a wide color representation beyond the standard RGB

創新的納米結構範諾共振色度傳感器擁有增強的響應性,並且在標準RGB色彩之外擁有廣泛的色彩表現

BUSAN, South Korea, Oct. 18, 2024 /PRNewswire/ -- Colorimetric sensors detect environmental changes by intuitively shifting colors, easily visible to the naked eye without the need for additional equipment. Furthermore, they operate with zero power consumption. By shifting color visibly, without any need for additional equipment, these sensors have the potential to play critical roles in applications like food packaging and ancient artifact preservation, where optimal humidity is crucial for quality control.

韓國釜山,2024年10月18日 / PRNewswire / - 色度傳感器通過直觀地改變顏色來檢測環境變化,易於肉眼觀察且無需額外設備。此外,它們零能耗運行。通過明顯改變顏色,無需額外設備,這些傳感器在食品包裝和古代文物保護等應用中具有潛在重要作用,其中適宜的溼度對質量控制至關重要。

The proposed sensor design incorporates a porous germanium layer (Pr-Ge), significantly improving color representation, and nanohole arrays that enhance the sensor's responsiveness.
所提出的傳感器設計結合了多孔鍺層(Pr-Ge),大幅改善色彩表現,並且具有增強傳感器響應性的納米孔陣列。

For accurate humidity detection, colorimetric sensors must cover a wide range of colors, demonstrate a linear correlation between color and humidity, respond quickly, and maintain long-term stability. Sensors that achieve coloration through structural changes are generally more advantageous than chemical reaction-based sensors. Among these, metal-hydroge-metal (MHM) structures utilizing Fabry-Pérot resonance stand out due to their simplicity and diverse color generation, as changes in the hydrogel cavity's thickness, often using swelling materials like chitosan, lead to different colors. However, conventional designs still suffer from limited color representation and slow responsiveness.

爲了準確檢測溼度,色度傳感器必須涵蓋一大範圍的顏色,顯示顏色與溼度之間的線性關係,快速響應,並保持長期穩定性。通過結構變化實現着色的傳感器一般比基於化學反應的傳感器更具優勢。在這些中,利用法布里-珀羅共振的金屬-水凝膠-金屬(MHM)結構因其簡單性和多樣的顏色生成而脫穎而出,由於水凝膠腔的厚度變化,往往使用像殼聚糖這樣的膨脹材料會產生不同的顏色。然而,傳統設計仍然存在有限的色彩表現和緩慢的響應性。

Addressing these issues, a research team from South Korea, led by Associate Professor Gil Ju Lee from the School of Electrical and Electronics Engineering at Pusan National University, developed an innovative two-dimensionally (2D) nanostructured Fano resonant colorimetric sensor (nFRCS). Dr. Lee explains, "Our design introduces nanohole arrays that utilize Fano resonance and plasmonic resonances, significantly enhancing color gamut by controlling the reflectance spectrum from subtractive coloration to additive coloration. Furthermore, these nanohole channels also enhance responsiveness." Their findings were published in the journal Optica.

解決這些問題,由韓國釜山國立大學電子與電氣工程學院的李吉秀副教授領導的研究團隊開發了創新的二維(2D)納米結構範諾共振色度傳感器(nFRCS)。李博士解釋說:「我們的設計引入利用範諾共振和等離子共振的納米孔陣列,通過控制從減性着色到加性着色的反射光譜,明顯增強了色域。此外,這些納米孔通道還增強了響應性。」 他們的研究成果發表在《Optica》雜誌上。

The nFRCS comprises an MHM structure of silver-chitosan-silver with a thin upper layer and thick bottom layer. The MHM also has a thin, porous germanium (Pr-Ge) coating. This coating is a key addition that transforms the MHM from a Fabry-Perot resonator to a Fano resonator, significantly improving color representation. Additionally, nFRCS incorporates 2D nanohole arrays (NHAs) into the MHM layer that establish a direct route for water vapors in the ambient environment to reach and interact with the chitosan layer. Due to the hydrophilic nature of chitosan, in highly humid conditions, the chitosan absorbs water molecules, causing it to swell, and in dry conditions releases water molecules, shrinking its volume, resulting in a humidity-level-dependent color change. These NHAs also improve the sensor's responsiveness, and their orderly pattern facilitates additional light-matter interactions such as surface plasmon resonance (SPP) and local surface plasmon resonance (LSPR), further boosting performance.

nFRCS由一層薄的上層和厚的底層銀-殼聚糖-銀(MHm)結構組成。 MHm還具有一層薄的多孔鍺(Pr-Ge)塗層。 這種塗層是一個關鍵添加,將MHm從法布里-珀羅共振器轉變爲法諾共振器,顯著改善顏色表示。此外,nFRCS將2D納米小孔陣列(NHAs)整合到MHm層中,建立了一條直接路徑,使環境中的水蒸汽能夠到達並與殼聚糖層相互作用。由於殼聚糖具有親水性,高溼條件下,殼聚糖吸收水分子,導致膨脹,在乾燥條件下釋放水分子,收縮其體積,導致溼度水平相關的顏色變化。這些NHAs還改善了傳感器的響應性,其有序圖案有助於表面等離子體共振(SPP)和局部表面等離子共振(LSPR)等額外的光-物質相互作用,進一步提高性能。

The researchers fabricated the nFRCS sensor using roll-to-plate nano-imprint lithography (NIL), which uses a stamping-like method to transfer the nanoscale patterns onto the MHM layer. Compared to conventional expensive nanostructure fabrication techniques, this method saves both time and cost. In experiments, the fabricated nFRCS showed a wide color gamut, exceeding the standard RGB (sRGB), showing 141% sRGB coverage and 105% Adobe RGB coverage, outperforming previous studies. Moreover, it demonstrated outstanding responsiveness with response and recovery times of 287 and 87 milliseconds, respectively.

研究人員使用滾到板納米印刷光刻(NIL)製造nFRCS傳感器,該方法採用類似衝壓的方法將納米級圖案轉移到MHm層上。與傳統昂貴的納米結構製造技術相比,這種方法既節省時間又節約成本。在實驗中,製造的nFRCS顯示出寬廣的色域,超過了標準RGb(sRGB),顯示141%的sRGb覆蓋率和105%的Adobe RGb覆蓋率,超過了以往的研究。此外,它表現出卓越的響應性,響應和恢復時間分別爲287毫秒和87毫秒。

Highlighting the broader applications of the sensor, Dr. Lee says, "Beyond humidity sensing, the nFRCS can also serve as health monitoring devices, intelligent displays, and interior materials, reacting to external stimuli by generating distinct color shifts. This design could serve as a framework for other types of colorimetric sensors that detect different environmental changes other than humidity."

李博士強調了該傳感器更廣泛的應用,在溼度傳感方面,nFRCS還可以作爲健康監測設備、智能顯示屏和室內材料,通過生成明顯的顏色變化來響應外部刺激。這種設計可以作爲檢測除溼度以外其他環境變化的其他類型的色度傳感器的框架。

Overall, this innovative sensor marks a significant leap forward for zero-power real-time environmental monitoring.

總體而言,這一創新傳感器對零功耗實時環境監測標誌着一大步向前。

Reference
Title of original paper: Ultrafast, Fano resonant colorimetric sensor with high chromaticity beyond standard RGB
Journal: Optica
DOI:

來源Sengenics
原始論文標題:具有高色度超越標準RGB的超快、法諾共振色差傳感器
期刊:Optica
DOI:

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SOURCE Pusan National University

機構來源:釜山國立大學

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