Karl Maximilian, Larsen Peter E, Rangacharya Varadarajan P, Hwu En Te, Rantanen Jukka, Boisen Anja, Rades Thomas
Department of Pharmacy , University of Copenhagen , Universitetsparken 2 , 2100 Copenhagen , Denmark.
Department of Micro- and Nanotechnology , Technical University of Denmark , Ørsteds Plads , 2800 Kgs. Lyngby , Denmark.
J Am Chem Soc. 2018 Dec 19;140(50):17522-17531. doi: 10.1021/jacs.8b09034. Epub 2018 Dec 5.
Thermal analysis plays an important role in both industrial and fundamental research and is widely used to study thermal characteristics of a variety of materials. However, despite considerable effort using different techniques, research struggles to resolve the physicochemical nature of many thermal transitions such as amorphous relaxations or structural changes in proteins. To overcome the limitations in sensitivity of conventional techniques and to gain new insight into the thermal and mechanical properties of small- and large-molecule samples, we have developed an instrumental analysis technique using resonating low-stress silicon nitride microstrings. With a simple sample deposition method and postprocess data analysis, we are able to perform rapid thermal analysis of direct instrumental triplicate samples with only pico- to nanograms of material. Utilizing this method, we present the first measurement of amorphous alpha and beta relaxation, as well as liquid crystalline transitions and decomposition of small-molecule samples deposited onto a microstring resonator. Furthermore, sensitive measurements of the glass transition of polymers and yet unresolved thermal responses of proteins below their apparent denaturation temperature, which seem to include the true solid state glass transition of pure protein, are reported. Where applicable, thermal events detected with the setup were in good agreement with conventional techniques such as differential scanning calorimetry and dynamic mechanical analysis. The sensitive detection of even subtle thermal transitions highlights further possibilities and applications of resonating microstrings in instrumental physicochemical analysis.
热分析在工业研究和基础研究中都发挥着重要作用,被广泛用于研究各种材料的热特性。然而,尽管人们使用不同技术付出了巨大努力,但在解析许多热转变的物理化学本质方面仍面临困难,比如蛋白质的非晶态弛豫或结构变化。为了克服传统技术灵敏度方面的局限性,并深入了解小分子和大分子样品的热性能及机械性能,我们开发了一种利用谐振低应力氮化硅微弦的仪器分析技术。通过简单的样品沉积方法和后处理数据分析,我们能够对仅含有皮克到纳克量级材料的直接仪器三重样品进行快速热分析。利用这种方法,我们首次测量了非晶态α和β弛豫,以及沉积在微弦谐振器上的小分子样品的液晶转变和分解。此外,还报道了对聚合物玻璃化转变的灵敏测量,以及蛋白质在其明显变性温度以下尚未解析的热响应,其中似乎包括纯蛋白质的真正固态玻璃化转变。在适用的情况下,该装置检测到的热事件与差示扫描量热法和动态力学分析等传统技术结果吻合良好。对甚至细微热转变的灵敏检测凸显了谐振微弦在仪器物理化学分析中的更多可能性和应用。