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市場調查報告書
商品編碼
1401843
到 2030 年壓電生物感測器市場預測:按類型、塗層材料、頻率、配銷通路、最終用戶和地區進行的全球分析Piezoelectric Biosensors Market Forecasts to 2030 - Global Analysis By Type (Single Crystal Materials, Piezoelectric Ceramics, Polymers and Other Types), Coating Material, Frequency, Distribution Channel, End User and By Geography |
根據 Stratistics MRC 的數據,2023 年全球壓電生物感測器市場規模為 279 億美元,預計在預測期內將以 9.1% 的複合年成長率成長,到 2030 年達到 514 億美元。
一類稱為壓電生物感測器的分析儀器利用壓電效應來監測向壓電材料施加機械力時產生的電位。它具有靈敏度高、體積小等特性。這些感測器可以僅根據施加的應變提供輸出訊號,不需要外部電壓或電流源。
復用功能
多重分析允許在一項測試中並行檢測多種分析物。這增加了生物感測器的吞吐量,從而可以更快地分析更多目標。此外,當樣本量較小或有限時,例如在只有少量血液或其他生物液體可用的診斷醫療環境中,此功能特別有用。此外,它還有助於節省資源。因此,這些是影響市場擴張的變數。
溫度敏感度
溫度波動會影響壓電材料製成的感測器的準確性和可靠性。溫度波動會引起基線漂移並影響生物感測器的整體性能。壓電生物感測器的開發和製造也很複雜,需要專門的專業知識和設備。其複雜性可能會阻礙其融入輕量級攜帶式設備。這些方面限制了市場的擴大。
監理合規性
壓電生物感測器的研究、行銷和接受度很大程度上受到法規遵從性的影響。通常需要對生物感測器性能進行嚴格檢驗才能滿足監管合規標準。為了遵守監管標準,壓電生物感測器製造商和開發商必須資助徹底的驗證研究。強調驗證可以提高生物感測器資料的可靠性,並提高其在醫療診斷等關鍵應用中的接受度。這些都是影響市場成長的因素。
生物感測器價格高
壓電生物感測器的高製造成本可能會阻礙其普及,特別是在資源有限的環境中。壓電生物感測器的普及取決於具有成本效益且靈敏的版本的開發。對具有成本效益的材料和製造技術的研究仍在進行中。這是阻礙市場拓展的主要因素。
使用壓電生物感測器進行現場護理測試可以在診所、機場甚至家庭等場所進行快速、分散的測試。 COVID-19大流行使得此類測試技術變得更加必要。與某些技術一樣,壓電生物感測器的進步和製造可能會受到疫情造成的全球供應鏈中斷的影響。這可能會影響這些感測器所需組件的價格和可得性。
聚合物細分市場預計將在預測期內成為最大的細分市場
聚合物細分市場預計將成為預測期內最大的細分市場。壓電聚合物薄塗層經常應用於石英晶共振器和其他壓電基板的表面。透過促進生物分析物和感測表面之間的接觸,這些塗層提高了生物感測器的靈敏度。這些材料在受到機械應力時可以發生壓電反應,使其適合感測應用。
預計鋁業在預測期內的複合年成長率最高。
預計鋁業在預測期內的複合年成長率最高。利用壓電效應來感測感測器表面的質量變化和結合現象的裝置稱為壓電生物感測器。這些感測器應用於多種領域,包括食品安全、環境監測和醫療診斷。儘管石英和陶瓷等其他材料經常用於壓電生物感測器的主動感測元件,但鋁不是常見材料。
預計北美在預測期內將佔據最大的市場佔有率。壓電生物感測器利用壓電效應來檢測感測器表面上由於分子之間相互作用而經常發生的質量變化。壓電生物感測器的開發和使用適用於各種應用,包括環境監測和醫療診斷,涉及多個研究機構、大學和公司。這些高度靈敏和特異性的生物感測器已證明能夠識別特定的生物分子、感染疾病和其他分析物。
預計亞太地區在預測期內將維持最高的複合年成長率。壓電生物感測器利用壓電效應來檢測由於分子之間的相互作用而導致的感測器表面的質量變化。壓電生物感測器的開發和使用涉及食品安全、環境監測和醫療診斷等多種應用,涉及多個研究機構、大學和公司。這些高度靈敏和特異性的生物感測器已證明能夠識別特定的生物分子、感染疾病和其他分析物。
According to Stratistics MRC, the Global Piezoelectric Biosensors Market is accounted for $27.9 billion in 2023 and is expected to reach $51.4 billion by 2030 growing at a CAGR of 9.1% during the forecast period. A class of analytical instruments known as piezoelectric biosensors uses the piezoelectric effect to monitor the electrical potential generated when mechanical force is applied to a piezoelectric material. They have a high degree of sensitivity and are modest in size. Since these sensors can provide an output signal based just on the applied strain, they don't need any external sources of voltage or current.
Multiplexing capabilities
Multiple analytes can be detected in parallel during a single test thanks to multiplexing. This boosts the biosensor's throughput and makes it possible to analyze more targets faster. Furthermore, this is especially useful in scenarios when sample sizes are few or limited, such in diagnostic medical settings where little amounts of blood or other biofluids are accessible. Furthermore, it aids in resource conservation. Thus, these are the variables impacting the market's expansion.
Temperature sensitivity
Temperature fluctuations can have an impact on the accuracy and dependability of a sensor made of piezoelectric materials. Variations in temperature have the potential to induce baseline drift and affect the biosensor's overall performance. Piezoelectric biosensors may also be complicated to develop and make, requiring specific expertise and equipment. Their incorporation into lightweight and portable devices can be hampered by their intricacy. These are the aspects that are limiting the market's expansion.
Regulatory Compliance
Piezoelectric biosensor research, marketing, and acceptance are significantly influenced by regulatory compliance. Strict validation of biosensor performance is typically required to meet regulatory compliance norms. To comply with regulatory standards, producers and developers of piezoelectric biosensors must finance thorough validation investigations. By emphasizing validation, biosensor data become more reliable and are more readily accepted in vital applications like medical diagnostics. These are the factors influencing the market's growth.
High price of biosensors
The high cost of manufacturing piezoelectric biosensors may prevent their widespread use, particularly in settings with limited resources. The widespread deployment of piezoelectric biosensors depends on the development of cost-effective, highly sensitive versions of these sensors. Research on materials and production techniques that are cost-effective is still underway. This is the main factor impeding the market's expansion.
Point-of-care testing using piezoelectric biosensors enables rapid and decentralized testing in locations such as clinics, airports, and even homes. The COVID-19 pandemic has made such testing skills more necessary. Similar to several technologies, the advancement and manufacturing of piezoelectric biosensors may be impacted by disturbances in the worldwide supply chain resulting from the pandemic. This might have an effect on the price and availability of parts needed for these sensors.
The polymers segment is expected to be the largest during the forecast period
The polymers segment is expected to be the largest during the forecast period. Thin coatings of piezoelectric polymers are frequently applied on the surface of quartz crystals or other piezoelectric substrates. By promoting the contact between the biological analyte and the sensing surface, these coatings increase the biosensor's sensitivity. These materials are appropriate for sensing applications because they may produce a piezoelectric response when mechanical stress is applied.
The aluminum segment is expected to have the highest CAGR during the forecast period
The aluminum segment is expected to have the highest CAGR during the forecast period. Devices that use the piezoelectric effect to sense mass changes or binding events on the sensor surface are known as piezoelectric biosensors. These sensors are often employed in many different fields, including as food safety, environmental monitoring, and medical diagnostics. Other materials, such as quartz or ceramics, are frequently utilized for the active sensing element in piezoelectric biosensors aluminum is not a popular material.
North America is projected to hold the largest market share during the forecast period. Piezoelectric biosensors detect mass changes on the sensor surface, frequently as a result of interactions between molecules, by using the piezoelectric effect. The development and use of piezoelectric biosensors for a variety of applications, including environmental monitoring, and medical diagnostics, has engaged several research institutes, universities, and businesses. With great sensitivity and specificity, these biosensors have demonstrated the ability to identify certain biomolecules, infections, and other analytes.
Asia Pacific is projected to hold the highest CAGR over the forecast period. Piezoelectric biosensors detect mass changes on the sensor surface, frequently as a result of interactions between molecules, by using the piezoelectric effect. The development and use of piezoelectric biosensors for a variety of applications, including food safety, environmental monitoring, and medical diagnostics, has engaged several research institutes, universities, and businesses. With great sensitivity and specificity, these biosensors have demonstrated the ability to identify certain biomolecules, infections, and other analytes.
Some of the key players in Piezoelectric Biosensors market include ACON Laboratories, F. Hoffmann-La Roche, Siemens, Universal Biosensors, LifeSensors, Medtronic, Abbott Point of Care, Pharmaco Kinesis, Bayer AG, LifeScan, DuPont, LifeScan IP Holdings, LLC, Conductive Technologies and Innovative Sensor Technology IST AG.
In March 2022, Medtronic announced partnership with Rockley Photonics to launch Bioptx biomarker sensing platform across various healthcare settings. The new biosensor is a single wearable device that is capable of monitoring multiple crucial biomarkers including body temperature, blood pressure, body hydration, alcohol, lactate and glucose trends among others.
In January 2022, Abbott launched a new category of consumer bio wearables, called Lingo. This new device is designed to track key signals in the body such as glucose, ketones and lactate, enabling people to understand health better and take action.