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市場調查報告書
商品編碼
1739355
邁特納的世界市場Meitnerium |
※ 本網頁內容可能與最新版本有所差異。詳細情況請與我們聯繫。
預計到 2030 年全球 meitnerium 市場規模將達到 78,400 美元
全球美特納金屬市場規模預計在2024年為52,900美元,預計2030年將達到78,400美元,2024年至2030年的複合年成長率為6.8%。固體美特納金屬是本報告分析的細分市場之一,預計其複合年成長率為5.4%,到分析期結束時規模將達到44,300美元。液體美特納金屬細分市場在分析期間的複合年成長率預計為9.1%。
美國市場規模估計為 15,500 美元;中國市場預期複合年成長率為 6.7%
預計到2024年,美國美特納市場規模將達到15,500美元。作為世界第二大經濟體,中國市場規模預計到2030年將達到14,100美元,在2024-2030年的分析期間內,複合年成長率為6.7%。其他值得關注的區域市場包括日本和加拿大,預計在分析期間內,這兩個市場的複合年成長率分別為6.1%和5.9%。在歐洲,預計德國市場的複合年成長率為5.6%。
全球美特納市場-主要趨勢與促進因素摘要
為什麼 meitnerium 是一個科學奇蹟而不是商業性實體?
邁特納(Mt)是一種人工合成的超重元素,原子序數為109,在核化學和粒子物理學領域具有重要意義,但由於產量極為有限且存在時間短暫,目前尚未實現商業性應用。邁特納於1982年在德國亥姆霍茲重離子研究中心首次合成,以紀念對核分裂發現做出貢獻的物理學家莉澤‧邁特納的名字命名。邁特納屬於元素週期表第9族,理論上與銥、銠和鈷共用的化學性質。
然而,對這些特性的實際探索仍停留在理論階段。邁特納釔沒有穩定同位素,其已知最穩定的同位素Mt-278的半衰期僅為幾毫秒。它的生成需要高能量核融合反應,通常是在粒子加速器中用鐵-58原子核轟擊鉍-209。此原子的存在是透過α能譜鑑定崩壞產物來證實的。鑑於其崩壞快,邁特納釔除了在理解超重元素行為和核殼層模型的基礎研究之外,沒有其他用途。
meitnerium 對超重元素和核物理的研究有何貢獻?
儘管邁特納元素不穩定,但它在推進原子核結構理論模型方面發揮了重要作用,尤其是在預測「穩定島」的理論模型中。 「穩定島」是元素週期表中一個虛擬的區域,超重元素在該區域可能具有顯著更長的半衰期。研究人員正在研究動態元素及其鄰近的超錒系元素,以檢驗核殼層閉合、相對論對電子軌道的影響以及同位素崩壞鏈的量子力學模型。這些研究有助於完善超越當前週期邊界、尚未發現的元素的穩定性、形成和化學性質的預測。
邁特納釕通常一次合成一個原子,需要超靈敏的檢測器和自動化資料分析系統,以便在背景雜訊中識別其崩壞模式。德國的GSI、俄羅斯的JINR和日本的RIKEN等先進設施正引領這一前沿,利用重離子加速器和分離器來研究這種短暫同位素。儘管從未分離出邁特納釕的宏觀樣本,但其崩壞特性對於繪製元素週期表的上限以及理解中子星碰撞等宇宙事件中的核合成路徑非常有價值。
哪些機構和實驗平台正在推進釕及其同位素的研究?
釔的研究一直非常深入,但目前只有少數幾家全球機構具備超重元素合成能力。位於達姆施塔特的GSI亥姆霍茲中心仍是釔的重要來源,進行初步實驗並持續研究崩壞鏈。位於杜布納的聯合核子研究所(JINR)經營超重元素工廠(SHEF),該工廠研究超重元素化學,目標是研究釔、達姆施塔特釔以及鄰近元素(例如銣)的較重同位素。
日本理化學研究所仁科加速器科學中心透過核融合實驗和崩壞鏈圖譜繪製做出了貢獻。這些機構使用充氣反沖分離器、飛行時間分析儀和位置敏感檢測器來識別具有極低生產截面(通常低於皮巴)的合成事件。包括國際純粹與應用化學聯合會(IUPAC)和國際純粹與應用物理聯合會(IUPAP)在內的世界核物理聯盟之間的合作,確保了發現聲明和命名通訊協定的標準化。由於釔原子壽命較短,這些研究著重於統計分析、理論建模和原子行為的推斷,而非直接操縱或利用。
在科學發現和元素週期表擴展方面,釔的未來前景如何?
邁特納釔的研究並非旨在進行商業性開發,而是作為發現更穩定的超重元素和更好地理解極端核電荷下原子行為的墊腳石。隨著研究向120號以上元素推進,邁特納釔的崩壞模式將有助於在極端庫侖應力下檢驗和改進殼模型預測和核力理論。邁特納釔的行為為理解重原子和電子組態的相對論效應提供了重要的見解,這些效應遠遠超出了自然元素的極限。
未來的前景可能包括嘗試透過替代靶彈組合和先進的核融合技術來生產壽命更長的同位素。下一代加速器、更靈敏的檢測器和自動崩壞識別演算法的引入將有助於這些努力。儘管不太可能實用化,但釔(meitnerium)可能繼續在量子化學模擬和元素週期表演化模型中被提及。
作為對科學好奇心和實驗精準性的致敬,邁特納釔展現了現代核能科學的邊界。它在實驗室中短暫的存在像徵著人類對物質基本結構及其主宰力量的探索,無論其實用性或商業性利益。
部分
形態(固體、液體、氣體)
關稅影響係數
全球產業分析師根據公司總部所在國家、製造地、進出口(成品和原始設備OEM)等因素預測其競爭地位的變化。這種複雜且多面向的市場動態預計將以多種方式影響競爭對手,包括人為提高銷貨成本、盈利下降、供應鏈重組以及其他微觀和宏觀市場動態。
全球產業分析師密切關注來自全球頂尖首席經濟學家(14,949位)、智庫(62家)以及貿易和產業協會(171家)的專家的意見,以評估其對生態系統的影響並應對新的市場現實。我們追蹤了來自每個主要國家的專家和經濟學家對關稅及其對本國影響的看法。
全球產業分析師預計,這場動盪將在未來2-3個月內逐漸平息,新的世界秩序將更加清晰地建立。全球產業分析師正在即時追蹤這些事態發展。
2025年4月:談判階段
在4月的報告中,我們將探討關稅對全球整體市場的影響,並提供區域市場調整。我們的預測是基於歷史數據和不斷變化的市場影響因素。
2025年7月:最終關稅調整
在各國宣布最終重置後,客戶將在 7 月收到免費更新,最終更新將包含明確的關稅影響分析。
相互和雙邊貿易及關稅影響分析:
美國<>中國<>墨西哥<>加拿大<>歐盟<>日本<>印度<>其他176個國家
領先的產業經濟學家:全球產業分析師知識庫追蹤了 14,949 位經濟學家,其中包括來自民族國家、智庫、貿易和產業協會、大型企業以及各領域專家的最具影響力的首席經濟學家,他們共用了這場前所未有的全球經濟狀況模式轉移的影響。我們超過 16,491 份報告大多遵循基於里程碑的兩階段發布計劃。
Global Meitnerium Market to Reach US$78.4 Thousand by 2030
The global market for Meitnerium estimated at US$52.9 Thousand in the year 2024, is expected to reach US$78.4 Thousand by 2030, growing at a CAGR of 6.8% over the analysis period 2024-2030. Solid Meitnerium, one of the segments analyzed in the report, is expected to record a 5.4% CAGR and reach US$44.3 Thousand by the end of the analysis period. Growth in the Liquid Meitnerium segment is estimated at 9.1% CAGR over the analysis period.
The U.S. Market is Estimated at US$15.5 Thousand While China is Forecast to Grow at 6.7% CAGR
The Meitnerium market in the U.S. is estimated at US$15.5 Thousand in the year 2024. China, the world's second largest economy, is forecast to reach a projected market size of US$14.1 Thousand by the year 2030 trailing a CAGR of 6.7% over the analysis period 2024-2030. Among the other noteworthy geographic markets are Japan and Canada, each forecast to grow at a CAGR of 6.1% and 5.9% respectively over the analysis period. Within Europe, Germany is forecast to grow at approximately 5.6% CAGR.
Global Meitnerium Market - Key Trends & Drivers Summarized
Why Is Meitnerium a Scientific Curiosity Rather Than a Commercial Element?
Meitnerium (Mt), with atomic number 109, is a synthetic, superheavy element that holds significant interest within the field of nuclear chemistry and particle physics, yet possesses no commercial applications due to its extremely limited production and fleeting existence. First synthesized in 1982 at GSI Helmholtz Centre for Heavy Ion Research in Germany, meitnerium was named in honor of physicist Lise Meitner, who contributed to the discovery of nuclear fission. Meitnerium belongs to Group 9 of the periodic table, theoretically sharing chemical characteristics with iridium, rhodium, and cobalt.
However, practical exploration of these properties remains theoretical. Meitnerium has no stable isotopes, and its most stable known isotope, Mt-278, has a half-life of only a few milliseconds. Its creation involves high-energy nuclear fusion reactions, typically bombarding bismuth-209 with iron-58 nuclei in a particle accelerator. The atom’s existence is confirmed through the identification of decay products using alpha spectroscopy. Given its rapid decay, meitnerium has no role outside of fundamental research aimed at understanding superheavy element behavior and the nuclear shell model.
How Does Meitnerium Contribute to Superheavy Element Research and Nuclear Physics?
Despite its instability, meitnerium plays a vital role in advancing theoretical models of nuclear structure, particularly those predicting the "island of stability"-a hypothetical region in the periodic table where superheavy elements may possess significantly longer half-lives. Researchers study meitnerium and its neighboring transactinides to test quantum mechanical models of nucleon shell closures, relativistic effects on electron orbitals, and isotopic decay chains. These investigations help refine predictions on the stability, formation, and chemistry of yet-undiscovered elements beyond the current periodic frontier.
Meitnerium is typically synthesized one atom at a time, demanding ultra-sensitive detectors and automated data analysis systems capable of identifying decay patterns among background noise. Advanced facilities like GSI in Germany, JINR in Russia, and RIKEN in Japan are leading this frontier, using heavy ion accelerators and separator equipment to study fleeting isotopes. Although no macroscopic sample of meitnerium has ever been isolated, its decay characteristics are valuable in mapping the periodic table’s upper limits and understanding nucleosynthesis pathways in cosmic events like neutron star collisions.
Which Institutions and Experimental Platforms Are Driving Research into Meitnerium and Its Isotopes?
Research into meitnerium is highly centralized and limited to a few global institutions with capabilities in superheavy element synthesis. The GSI Helmholtz Centre in Darmstadt remains a key origin point for meitnerium, having conducted the initial experiments and continued studies on decay chains. The Joint Institute for Nuclear Research (JINR) in Dubna operates the Superheavy Element Factory (SHEF), which explores transactinide chemistry and targets heavier isotopes of meitnerium and neighboring elements like darmstadtium and roentgenium.
RIKEN Nishina Center in Japan contributes through cold fusion experiments and decay sequence mapping. These institutions use gas-filled recoil separators, time-of-flight analyzers, and position-sensitive detectors to identify synthesis events with extremely low production cross-sections (typically less than a picobarn). Collaboration among global nuclear physics consortia, including IUPAC and IUPAP, ensures standardization in discovery claims and naming protocols. Because of the short-lived nature of meitnerium atoms, these research efforts focus on statistical analysis, theoretical modeling, and atomic behavior extrapolation rather than direct manipulation or utilization.
What Is the Future Outlook for Meitnerium in Scientific Discovery and Periodic Table Expansion?
The study of meitnerium is not aimed at commercial exploitation but serves as a stepping stone toward discovering more stable superheavy elements and deepening our understanding of atomic behavior at extreme nuclear charges. As research pushes toward elements 120 and beyond, meitnerium’s decay patterns help validate or refine shell model predictions and nuclear force theories under extreme Coulombic stress. Its behavior provides critical insights into relativistic effects on heavy atoms and electronic configurations far beyond natural elemental limits.
Future prospects may include attempts to produce longer-lived meitnerium isotopes through alternative target-projectile combinations or advanced fusion methods. The deployment of next-generation accelerators, higher-sensitivity detectors, and automated decay identification algorithms will support these efforts. While practical applications are unlikely, meitnerium will continue to be referenced in quantum chemistry simulations and periodic table evolution models.
As a tribute to scientific curiosity and experimental precision, meitnerium exemplifies the boundaries of modern nuclear science. Its fleeting presence in laboratories symbolizes humanity’s quest to understand the fundamental structure of matter and the forces that govern it-regardless of practical utility or commercial gain.
SCOPE OF STUDY:
The report analyzes the Meitnerium market in terms of units by the following Segments, and Geographic Regions/Countries:
Segments:
Form (Solid Form, Liquid Form, Gas Form)
Geographic Regions/Countries:
World; United States; Canada; Japan; China; Europe (France; Germany; Italy; United Kingdom; Spain; Russia; and Rest of Europe); Asia-Pacific (Australia; India; South Korea; and Rest of Asia-Pacific); Latin America (Argentina; Brazil; Mexico; and Rest of Latin America); Middle East (Iran; Israel; Saudi Arabia; United Arab Emirates; and Rest of Middle East); and Africa.
Select Competitors (Total 44 Featured) -
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