3-甲基戊烷,是五個一結構異構體的己烷,也是分子式為 C 6 H 14 {\displaystyle {\ce {C6H14}}} 的支鏈烷烴,是在正戊烷的第三個碳原子上的氫被甲基取代,所形成的己烷的結構異構體。 快速預覽 3-甲基戊烷[1], 識別 ... 3-甲基戊烷[1] Ball and stick model of 3-methylpentane Spacefill model of 3-methylpentane IUPAC名3-Methylpentane 識別 CAS號 96-14-0 Y PubChem 7282 ChemSpider 7010 SMILES CCC(C)CC Beilstein 1730734 UN編號 1208 EINECS 202-481-4 ChEBI 88373 RTECS SA2995500 MeSH 3-methylpentane 性質 化學式 C6H14 摩爾質量 86.18 g·mol−1 外觀 透明澄清液體 氣味 無臭 密度 664 mg mL−1 熔點 -118 °C(155 K) 沸點 63 °C(336 K) 溶解性(水) 不可溶 log P 3.608 蒸氣壓 18.0 kPa (at 17 °C) kH 8.8 mol Pa−1 kg−1 磁化率 -75.52·10−6 cm3/mol 折光度nD 1.376 熱力學 ΔfHm⦵298K −203.0–−201.0 kJ mol−1 ΔcHm⦵ −4.1608–−4.1590 MJ mol−1 S⦵298K 292.5 J K−1 mol−1 熱容 191.16 J K−1 mol−1 危險性 GHS危險性符號 GHS提示詞 DANGER H-術語 H225, H304, H315, H336, H411 P-術語 P210, P261, P273, P301+310, P331 爆炸極限 1.2–7.7% 允許暴露限值 none[2] 相關物質 相關化合物 異戊烷2-甲基戊烷3-乙基戊烷2-甲基己烷3-甲基己烷 相關化學品 2-乙基-1-丁醇戊諾醯胺 若非註明,所有數據均出自標準狀態(25 ℃,100 kPa)下。 關閉 Remove ads命名 由IUPAC命名法指定的「3-甲基戊烷」 「3-甲基」表示一顆碳原子與主幹第三個碳相接 「戊烷」表示主幹上有五個碳 用途 3-甲基戊烷在快速乾燥塗料,印刷油墨和粘合劑中作為稀釋劑 此外,它也可用於在燃料,潤滑劑[3] 化合物也用作光譜學和色譜法中的參考物質[4] 安全性 3-甲基戊烷形成高度易燃的蒸汽 - 空氣混合物 該化合物的閃點低於-20℃ 以上所述的爆炸範圍是1.2之間體積%(40克/米3)[5]比爆炸下限(LEL)和7.0%(體積)(250克/米3)作為爆炸上限(UEL)[6] 所述的點火溫度為300℃ 所述的織物因而落入內溫度類 T3。 特性 3-甲基戊烷是可燃的,易揮發的無色液體,苯酚氣味 在1大氣壓下,該化合物的沸點為63℃ 該蒸氣壓力函數由下式給出log10(P) = A−(B/(T+C))( P是巴(bar),T是凱氏溫標(K) ) 其中A = 3.97377 B = 1152.368和C = -46.021的溫度範圍內289K至337K [7] 最重要的熱力學性質列於下表: 更多資訊 屬性, 單位 ... 屬性 單位 數值 標準焓 ΔfH0gas −171,6 kJ·mol−1[8] 標準摩爾熵 S0liquid S0g 292,5 J·mol−1·K−1[9] 液體 382,88 J·mol−1·K−1[9] 氣體 燃燒熱 ΔcH0liquid −4159,98 kJ·mol−1[9] 熱容量 cp 191,16 J·mol−1·K−1 (25 °C)[10]液體 熔融焓 ΔfH0 5,3032 kJ·mol−1[9]在熔點 融化 ΔfS0 48,101 kJ·mol−1[9]在熔點 蒸發 ΔVH0 28,08 kJ·mol−1[11]在常壓下的沸點 30,47 kJ·mol−1[12] 在25℃下 臨界溫度 TC 231 °C[13] 臨界壓力 PC 31,1 bar[13] 臨界體積 VC 0,368 l·mol−1[13] 臨界密度 ρC 2,72 mol·l−1[13] 關閉 蒸發焓的溫度依賴性可以根據等式 ΔVH0=A·exp(−β·Tr)(1−Tr)β (ΔVH0 的單位是kJ/mol,Tr =(T/Tc)降低溫度),在298K和353K之間的溫度範圍內, A = 45,24 kJ/mol, β = 0,2703 und Tc = 504,4 K[14] Remove ads物理性質和同分異構體 3-甲基戊烷是一種無色液體,具有微弱的特殊氣味(苯酚味) C6H12顯示出了4個異構體: 己烷(正己烷):CH3(CH2)4CH3 2-甲基戊烷(異己烷):CH3CH2CH2CH(CH3)2 2,2-二甲基丁烷(新己烷):CH3CH2C(CH3)3 2,3-二甲基丁烷:(CH3)2 CHCH(CH3)2 結構式 名稱 分子量 沸點(°C, 1 atm) 結構簡式 正己烷 己烷 86,18 69 CH3(CH2)4CH3 2-甲基戊烷 異己烷 58,12 60 (CH3)2CH(CH2)2CH3 3-甲基戊烷 58,12 64 CH3CH2CH(CH3)CH2CH3 2,2-二甲基丁烷 新己烷 58,12 49,73 CH3C(CH3)2CH2CH3 2,3-二甲基丁烷 58,12 57,9 CH3CH(CH3)CH(CH3)CH3 Remove ads生產(製備) 自然和工業的分離 從石油分離 從石油精煉或聚合烴得到的混合物中分離 合成 在催化劑 如:三氯化磷存在下,在400℃和200巴下使正丁烷與乙烯的反應可以製造3-甲基戊烷[15] C H 3 C H 2 C H 2 C H 3 + C 2 H 4 → 400 o C , 200 b a r P C l 3 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}CH_{2}CH_{3}+C_{2}H_{4}{\xrightarrow[{400^{o}C,200bar}]{PCl_{3}}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } Remove ads透過合成反應製備:低級碳鏈的起始原料 結構上,3-甲基戊烷由二部分組成:丁烷()和乙烷( CH 3 CH 2 {\displaystyle {\ce {CH3CH2}}} )。 因此,製備純3-甲基戊烷的最簡單的方法是:[16] 1.仲丁基鹵化物 與 乙基鋰 或 丁基鋰 與 乙基鹵化物 反應 C H 3 C H 2 C H 2 X C H 3 + 2 L i → | E t 2 O | C H 3 C H 2 C H 2 L i C H 3 + L i X {\displaystyle \mathrm {CH_{3}CH_{2}CH_{2}XCH_{3}+2Li{\xrightarrow {|Et_{2}O|}}CH_{3}CH_{2}CH_{2}LiCH_{3}+LiX} } C H 3 C H 2 X + C H 3 C H 2 C H 2 X C H 3 → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + L i X {\displaystyle \mathrm {CH_{3}CH_{2}X+CH_{3}CH_{2}CH_{2}XCH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+LiX} } 或 C H 3 C H 2 X + 2 L i → | E t 2 O | C H 3 C H 2 L i + L i X {\displaystyle \mathrm {CH_{3}CH_{2}X+2Li{\xrightarrow {|Et_{2}O|}}CH_{3}CH_{2}Li+LiX} } C H 3 C H 2 L i + C H 3 C H 2 C H 2 X C H 3 → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + L i X {\displaystyle \mathrm {CH_{3}CH_{2}Li+CH_{3}CH_{2}CH_{2}XCH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+LiX} } 2.武慈(Wurtz)反應可以得到該產品的混合物:[17] C H 3 C H 2 X + C H 3 C H 2 C H 2 X C H 3 + 6 N a → C H 3 C H 2 C H 2 C H 3 + C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + C H 3 C H 2 C H ( C H 3 ) C H C H ( C H 3 ) C H 2 C H 3 + 6 N a X {\displaystyle \mathrm {CH_{3}CH_{2}X+CH_{3}CH_{2}CH_{2}XCH_{3}+6Na{\xrightarrow {}}CH_{3}CH_{2}CH_{2}CH_{3}+CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+CH_{3}CH_{2}CH(CH_{3})CHCH(CH_{3})CH_{2}CH_{3}+6NaX} } 該反應對於前者是無利可圖的,但是這些產物相對的比較容易分離:3,4-二甲基己烷是液體(沸點164℃) ,3-甲基戊烷也是液體,但更具揮發性(沸點:64℃),丁烷只要冷卻或壓縮就會液化(沸點:-1-1℃左右) Remove ads無碳鏈變化反應的製備 還原鹵代化合物 產生氫,即金屬+酸(H+):[18] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 X + Z n + H X → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + Z n X 2 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}X+Zn+HX{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+ZnX_{2}} } 或 C H 3 C H 2 C H ( C H 3 ) C H X C H 3 + Z n + H X → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + Z n X 2 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHXCH_{3}+Zn+HX{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+ZnX_{2}} } 或 C H 3 C H 2 C X ( C H 3 ) C H 2 C H 3 + Z n + H X → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + Z n X 2 {\displaystyle \mathrm {CH_{3}CH_{2}CX(CH_{3})CH_{2}CH_{3}+Zn+HX{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+ZnX_{2}} } 或 ( C H 3 C H 2 ) 2 C H C H 2 X + Z n + H X → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + Z n X 2 {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}X+Zn+HX{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+ZnX_{2}} } 2. 氫化鋁鋰(LiAlH4) 或 硼氫化鈉(NaBH4):[19] 4 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 X + L i A l H 4 → 4 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + A l X 3 + L i X {\displaystyle \mathrm {4CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}X+LiAlH_{4}{\xrightarrow {}}4CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+AlX_{3}+LiX} } 或 4 C H 3 C H 2 C H ( C H 3 ) C H X C H 3 + Z n + H X + L i A l H 4 → 4 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + A l X 3 + L i X {\displaystyle \mathrm {4CH_{3}CH_{2}CH(CH_{3})CHXCH_{3}+Zn+HX+LiAlH_{4}{\xrightarrow {}}4CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+AlX_{3}+LiX} } 或 4 C H 3 C H 2 C X ( C H 3 ) C H 2 C H 3 + Z n + H X + L i A l H 4 → 4 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + A l X 3 + L i X {\displaystyle \mathrm {4CH_{3}CH_{2}CX(CH_{3})CH_{2}CH_{3}+Zn+HX+LiAlH_{4}{\xrightarrow {}}4CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+AlX_{3}+LiX} } 或 4 ( C H 3 C H 2 ) 2 C H C H 2 X + Z n + H X + L i A l H 4 → 4 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + A l X 3 + L i X {\displaystyle \mathrm {4(CH_{3}CH_{2})_{2}CHCH_{2}X+Zn+HX+LiAlH_{4}{\xrightarrow {}}4CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+AlX_{3}+LiX} } 3. 使用碘化氫(HI)還原烷基碘:[20] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 I + H I → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + I 2 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}I+HI{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+I_{2}} } 或 C H 3 C H 2 C H ( C H 3 ) C H I C H 3 + H I → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + I 2 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHICH_{3}+HI{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+I_{2}} } 或 C H 3 C H 2 C I ( C H 3 ) C H 2 C H 3 + H I → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + I 2 {\displaystyle \mathrm {CH_{3}CH_{2}CI(CH_{3})CH_{2}CH_{3}+HI{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+I_{2}} } 或 ( C H 3 C H 2 ) 2 C H C H 2 I + H I → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + I 2 {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}I+HI{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+I_{2}} } 4. 使用甲矽烷(SiH4)中還原烷基鹵化物,在三氟化硼的催化下製備丁烷:[21] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 X + S i H 4 → B F 3 C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + S i H 3 X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}X+SiH_{4}{\xrightarrow {BF_{3}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+SiH_{3}X} } 或 C H 3 C H 2 C H ( C H 3 ) C H X C H 3 + S i H 4 → B F 3 C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + S i H 3 X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHXCH_{3}+SiH_{4}{\xrightarrow {BF_{3}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+SiH_{3}X} } 或 C H 3 C H 2 C X ( C H 3 ) C H 2 C H 3 + S i H 4 → B F 3 C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + S i H 3 X {\displaystyle \mathrm {CH_{3}CH_{2}CX(CH_{3})CH_{2}CH_{3}+SiH_{4}{\xrightarrow {BF_{3}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+SiH_{3}X} } 或 ( C H 3 C H 2 ) 2 C H C H 2 X + S i H 4 → B F 3 C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + S i H 3 X {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}X+SiH_{4}{\xrightarrow {BF_{3}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+SiH_{3}X} } 5. 使用烷基錫烷還原烷基鹵化物:[22] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 X + R S n H 3 → C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + R S n H 2 X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}X+RSnH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+RSnH_{2}X} } 或 C H 3 C H 2 C H ( C H 3 ) C H X C H 3 + R S n H 3 → C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + R S n H 2 X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHXCH_{3}+RSnH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+RSnH_{2}X} } 或 C H 3 C H 2 C X ( C H 3 ) C H 2 C H 3 + R S n H 3 → C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + R S n H 2 X {\displaystyle \mathrm {CH_{3}CH_{2}CX(CH_{3})CH_{2}CH_{3}+RSnH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+RSnH_{2}X} } 或 ( C H 3 C H 2 ) 2 C H C H 2 X + R S n H 3 → C H 3 C H 2 C H 2 C H ( C H 3 ) 2 + R S n H 2 X {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}X+RSnH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}+RSnH_{2}X} } 6.金屬的還原,得到水解的有機金屬化合物: 使用鋰(Li):[23] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 X + 2 L i → − 10 o C | E t 2 O | C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 L i + L i X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}X+2Li{\xrightarrow[{-10^{o}C}]{|Et_{2}O|}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}Li+LiX} } C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 L i + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + L i O H {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}Li+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+LiOH} } C H 3 C H 2 C H ( C H 3 ) C H X C H 3 + 2 L i → − 10 o C | E t 2 O | C H 3 C H 2 C H ( C H 3 ) C H L i C H 3 + L i X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHXCH_{3}+2Li{\xrightarrow[{-10^{o}C}]{|Et_{2}O|}}CH_{3}CH_{2}CH(CH_{3})CHLiCH_{3}+LiX} } C H 3 C H 2 C H ( C H 3 ) C H L i C H 3 + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + L i O H {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHLiCH_{3}+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+LiOH} } C H 3 C H 2 C X ( C H 3 ) C H 2 C H 3 + 2 L i → − 10 o C | E t 2 O | C H 3 C H 2 C L i ( C H 3 ) C H 2 C H 3 + L i X {\displaystyle \mathrm {CH_{3}CH_{2}CX(CH_{3})CH_{2}CH_{3}+2Li{\xrightarrow[{-10^{o}C}]{|Et_{2}O|}}CH_{3}CH_{2}CLi(CH_{3})CH_{2}CH_{3}+LiX} } C H 3 C H 2 C L i ( C H 3 ) C H 2 C H 3 + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + L i O H {\displaystyle \mathrm {CH_{3}CH_{2}CLi(CH_{3})CH_{2}CH_{3}+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+LiOH} } ( C H 3 C H 2 ) 2 C H C H 2 X + 2 L i → − 10 o C | E t 2 O | ( C H 3 C H 2 ) 2 C H C H 2 L i + L i X {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}X+2Li{\xrightarrow[{-10^{o}C}]{|Et_{2}O|}}(CH_{3}CH_{2})_{2}CHCH_{2}Li+LiX} } ( C H 3 C H 2 ) 2 C H C H 2 L i + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + L i O H {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}Li+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+LiOH} } 使用鎂(Mg):[24] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 X + M g → | E t 2 O | C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 M g X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}X+Mg{\xrightarrow {|Et_{2}O|}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}MgX} } C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 M g X + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + M g ( O H ) X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}MgX+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+Mg(OH)X} } C H 3 C H 2 C H ( C H 3 ) C H X C H 3 + M g → | E t 2 O | C H 3 C H 2 C H ( C H 3 ) C H M g X C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHXCH_{3}+Mg{\xrightarrow {|Et_{2}O|}}CH_{3}CH_{2}CH(CH_{3})CHMgXCH_{3}} } C H 3 C H 2 C H ( C H 3 ) C H M g X C H 3 + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + M g ( O H ) X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CHMgXCH_{3}+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+Mg(OH)X} } C H 3 C H 2 C X ( C H 3 ) C H 2 C H 3 + M g → | E t 2 O | C H 3 C H 2 C M g X ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}CX(CH_{3})CH_{2}CH_{3}+Mg{\xrightarrow {|Et_{2}O|}}CH_{3}CH_{2}CMgX(CH_{3})CH_{2}CH_{3}} } C H 3 C H 2 C M g X ( C H 3 ) C H 2 C H 3 + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + M g ( O H ) X {\displaystyle \mathrm {CH_{3}CH_{2}CMgX(CH_{3})CH_{2}CH_{3}+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+Mg(OH)X} } ( C H 3 C H 2 ) 2 C H C H 2 X + M g → | E t 2 O | ( C H 3 C H 2 ) 2 C H C H 2 M g X {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}X+Mg{\xrightarrow {|Et_{2}O|}}(CH_{3}CH_{2})_{2}CHCH_{2}MgX} } ( C H 3 C H 2 ) 2 C H C H 2 M g X + H 2 O → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + M g ( O H ) X {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}MgX+H_{2}O{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+Mg(OH)X} } Remove ads氫化不飽和烴 1. 3-甲基-1-戊烯:[25] C H 3 C H 2 C H ( C H 3 ) C H = C H 2 + H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH=CH_{2}+H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 2. 3-甲基-2-戊烯:[25] C H 3 C H 2 C ( C H 3 ) = C H C H 3 + H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}C(CH_{3})=CHCH_{3}+H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 3. 2-乙基-1-丁烯:[25] ( C H 3 C H 2 ) 2 C = C H 2 + H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}C=CH_{2}+H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 4. 3-甲基-1,2-戊二烯:[25] C H 3 C H 2 C ( C H 3 ) = C = C H 2 + 2 H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}C(CH_{3})=C=CH_{2}+2H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 5. 3-甲基-1,3-戊二烯:[25] C H 3 C H = C ( C H 3 ) C H = C H 2 + 2 H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH=C(CH_{3})CH=CH_{2}+2H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 6. 3-甲基-1,4-戊二烯:[25] C H 2 = C H C H ( C H 3 ) C H = C H 2 + 2 H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{2}=CHCH(CH_{3})CH=CH_{2}+2H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 7. 3-甲基戊烷-1:[26] C H 3 C 2 H C H ( C H 3 ) C ≡ C H + 2 H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}C_{2}HCH(CH_{3})C\equiv CH+2H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 8. 3-甲基-1,2,4-戊二烯:[25] C H 2 = C H C ( C H 3 ) = C = C H 2 + 3 H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{2}=CHC(CH_{3})=C=CH_{2}+3H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 9. 3-甲基-4-戊烯-2-炔:[25][26] C H 3 C H = C ( C H 3 ) C ≡ C H + 3 H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH=C(CH_{3})C\equiv CH+3H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 10. 3-甲基-4-戊烯-1-炔:[25][26] C H 2 = C H C H ( C H 3 ) C ≡ C H + 3 H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{2}=CHCH(CH_{3})C\equiv CH+3H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}} } 還原氧化物 1.還原醛 - 沃爾夫-凱惜納-黃鳴龍還原反應(Wolf-Kishner)反應:[27] 3-甲基戊醛: C H 3 C H 2 C H ( C H 3 ) C H 2 C H O + N H 2 N H 2 → K O H C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + N 2 + H 2 O {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CHO+NH_{2}NH_{2}{\xrightarrow {KOH}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+N_{2}+H_{2}O} } 甲基丁醛: C H 3 C H 2 C H ( C H 2 C H 3 ) C H O + N H 2 N H 2 → K O H C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + N 2 + H 2 O {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{2}CH_{3})CHO+NH_{2}NH_{2}{\xrightarrow {KOH}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+N_{2}+H_{2}O} } 2.還原酮 - 克萊門森還原反應(Clemmensen)反應:[28] 3-甲基戊酮 C H 3 C H 2 C H ( C H 3 ) C O C H 3 + 2 Z n + 2 H C l → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + Z n C l 2 + Z n O {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})COCH_{3}+2Zn+2HCl{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+ZnCl_{2}+ZnO} } 還原硫化物 1.還原硫醇可以產生3-甲基戊烷。 例如 通過還原 3-甲基-1-戊硫醇 (雷尼鎳催化):[29] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 S H + H 2 → N i C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + H 2 S {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}SH+H_{2}{\xrightarrow {Ni}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+H_{2}S} } 2.還原硫酯可以產生3-甲基戊烷.. 例如 通過還原 二(3-甲基戊基)硫醚(雷尼鎳催化):[30] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 S C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + 2 H 2 → N i 2 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + H 2 S {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}SCH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+2H_{2}{\xrightarrow {Ni}}2CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+H_{2}S} } 減少碳鏈的長度的分解反應 加熱鹼性的 4-甲基己酸溶液 [CH3CH2CH(CH3)CH2CH2COOH] [31] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 C O O H + N a O H → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 C O O N a + H 2 O → 4 C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a H C O 3 → △ C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a O H + C O 2 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}COOH+NaOH{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}COONa+H_{2}O{\xrightarrow {\mathcal {4}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaHCO_{3}{\xrightarrow {\triangle }}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaOH+CO_{2}} } 或 2,3-二甲基戊酸 [CH3CH2CH(CH3)CH(CH3)COOH] C H 3 C H 2 C ( C H 3 ) ( C H 2 C H 3 ) C O O H + N a O H → C H 3 C H 2 C ( C H 3 ) ( C H 2 C H 3 ) C O O N a + H 2 O → 4 C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a H C O 3 → △ C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a O H + C O 2 {\displaystyle \mathrm {CH_{3}CH_{2}C(CH_{3})(CH_{2}CH_{3})COOH+NaOH{\xrightarrow {}}CH_{3}CH_{2}C(CH_{3})(CH_{2}CH_{3})COONa+H_{2}O{\xrightarrow {\mathcal {4}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaHCO_{3}{\xrightarrow {\triangle }}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaOH+CO_{2}} } 或 2-乙基-2-甲基丁酸 [CH3CH2C(CH3)(CH2CH3)COOH] C H 3 C H 2 C H ( C H 3 ) C H ( C H 3 ) C O O H + N a O H → C H 3 C H 2 C H ( C H 3 ) C H ( C H 3 ) C O O N a + H 2 O → 4 C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a H C O 3 → △ C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a O H + C O 2 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH(CH_{3})COOH+NaOH{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH(CH_{3})COONa+H_{2}O{\xrightarrow {\mathcal {4}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaHCO_{3}{\xrightarrow {\triangle }}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaOH+CO_{2}} } 或 3-乙基戊酸 [(CH3)2CHCH2CH2COOH] ( C H 3 C H 2 ) 2 C H C H 2 C O O H + N a O H → C H 3 C H 2 ) 2 C H C H 2 C O O N a + H 2 O → 4 C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a H C O 3 → △ C H 3 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + N a O H + C O 2 {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{2}COOH+NaOH{\xrightarrow {}}CH_{3}CH_{2})_{2}CHCH_{2}COONa+H_{2}O{\xrightarrow {\mathcal {4}}}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaHCO_{3}{\xrightarrow {\triangle }}CH_{3}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+NaOH+CO_{2}} } 化學性質 氧化 1.完全燃燒:就像所有的烷烴一樣,3-甲基戊烷與過量的氧氣燃燒,產生二氧化碳和水:[32] 2 C 6 H 14 + 19 O 2 → △ 12 C O 2 + 14 H 2 O + 8343 k J {\displaystyle \mathrm {2C_{6}H_{14}+19O_{2}{\xrightarrow {\triangle }}12CO_{2}+14H_{2}O+8343kJ} } 儘管反應強烈放熱,但其起始必須首先克服CC鍵[33],CH鍵[34],OO鍵[35]斷裂的障礙,所以溫度不會太高 2.水煤氣: C 6 H 14 + 6 H 2 O → 700 − 1100 o C N i 6 C O + 14 H 2 {\displaystyle \mathrm {C_{6}H_{14}+6H_{2}O{\xrightarrow[{700-1100^{o}C}]{Ni}}6CO+14H_{2}} } 3.催化氧化的主要產物為3-甲基戊醇-3: C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + 1 2 O 2 → △ C u C H 3 C H 2 C ( O H ) ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+{\frac {1}{2}}O_{2}{\xrightarrow[{\triangle }]{Cu}}CH_{3}CH_{2}C(OH)(CH_{3})CH_{2}CH_{3}} } 4.使用高錳酸鉀(KMnO4)氧化的產物為3-甲基戊醇-3: 3 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + 2 K M n O 4 + H 2 S O 4 → C H 3 C H 2 C ( O H ) ( C H 3 ) C H 2 C H 3 + 2 M n O 2 + K 2 S O 4 + H 2 O {\displaystyle \mathrm {3CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+2KMnO_{4}+H_{2}SO_{4}{\xrightarrow {}}CH_{3}CH_{2}C(OH)(CH_{3})CH_{2}CH_{3}+2MnO_{2}+K_{2}SO_{4}+H_{2}O} } 鹵化[36] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + X 2 → △ U V a C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 X + b C H 3 C H 2 C H ( C H 3 ) C H X C H 3 + c C H 3 C H 2 C X ( C H 3 ) C H 2 C H 3 + d C H 3 C H 2 C H ( C H 2 X ) C H 2 C H 3 + H X {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+X_{2}{\xrightarrow[{\triangle }]{UV}}aCH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}X+bCH_{3}CH_{2}CH(CH_{3})CHXCH_{3}+cCH_{3}CH_{2}CX(CH_{3})CH_{2}CH_{3}+dCH_{3}CH_{2}CH(CH_{2}X)CH_{2}CH_{3}+HX} } X的活性:氟(F2) >氯(Cl2) >溴(Br2) >碘(I2)。 其中0 <A,B,C,D <1,A + B + C + D = 0 氟(F2)和氯(Cl2)的活性高,選擇性低,丙基鹵化物的比例主要取決於置換氫原子比例,氯: 3-甲基戊基氯-1: 6x1 = 6 3-甲基戊基氯-2: 4x3.8 = 15.2 3-甲基戊基氯-3: 1x5 = 5 2-乙基丁基氯-1: 3x1 = 3 也就是說,所得混合物為: 20.5% 3-甲基戊基氯-1 52.1% 3-甲基戊基氯化物-2 17.1% 3-甲基戊基氯化物-3 10.3% 2-乙基丁基氯化物-1 溴(Br2)和碘(I2),較不活躍所以更具選擇性 3-甲基戊基溴-1: 6x1 = 6 3-甲基戊基溴-2: 4x82 = 328 3-甲基戊基溴-3: 1x1600 = 1600 2-乙基丁基溴-1: 3x1 = 3 也就是說,所得混合物為: 0.3% 3-甲基戊基溴-1 16.9% 3-甲基戊基溴-2 82.6% 3-甲基戊基溴-3 0.1% 2-乙基丁基溴化物-1 CH3CH2CH(CH3)CH2CH3的氯化分析: 參見:統計學 1.發生:自由基生產 C l 2 → △ U V 2 C l ∙ − 239 k J {\displaystyle \mathrm {Cl_{2}{\xrightarrow[{\triangle }]{UV}}2Cl^{\bullet }-239kJ} } 所需要的能量從紫外光(UV)或熱(D)吸收 2.擴散:消耗舊自由基,形成新的自由基 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + C l ∙ → 0 , 21 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 ∙ + 0 , 52 C H 3 C H 2 C H ( C H 3 ) C H ∙ C H 3 + 0 , 17 C H 3 C H 2 C ∙ ( C H 3 ) C H 2 C H 3 + 0 , 1 C H 3 C H 2 C H ( C H 2 ∙ ) C H 2 C H 3 + H C l + 14 k J {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+Cl^{\bullet }{\xrightarrow {}}0,21CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}^{\bullet }+0,52CH_{3}CH_{2}CH(CH_{3})CH^{\bullet }CH_{3}+0,17CH_{3}CH_{2}C^{\bullet }(CH_{3})CH_{2}CH_{3}+0,1CH_{3}CH_{2}CH(CH_{2}^{\bullet })CH_{2}CH_{3}+HCl+14kJ} } C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 ∙ + C l 2 → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 C l + C l ∙ + 100 k J {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}^{\bullet }+Cl_{2}{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}Cl+Cl^{\bullet }+100kJ} } C H 3 C H 2 C H ( C H 3 ) C H ∙ C H 3 + C l 2 → C H 3 C H 2 C H ( C H 3 ) C H ( C l ) C H 3 + C l ∙ + 100 k J {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH^{\bullet }CH_{3}+Cl_{2}{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH(Cl)CH_{3}+Cl^{\bullet }+100kJ} } C H 3 C H 2 C ∙ ( C H 3 ) C H 2 C H 3 + C l 2 → C H 3 C H 2 C ( C l ) ( C H 3 ) C H 2 C H 3 + C l ∙ + 100 k J {\displaystyle \mathrm {CH_{3}CH_{2}C^{\bullet }(CH_{3})CH_{2}CH_{3}+Cl_{2}{\xrightarrow {}}CH_{3}CH_{2}C(Cl)(CH_{3})CH_{2}CH_{3}+Cl^{\bullet }+100kJ} } C H 3 C H 2 C H ( C H 2 ∙ ) C H 2 C H 3 + C l 2 → C H 3 C H 2 C H ( C H 2 C l ) C H 2 C H 3 + C l ∙ + 100 k J {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{2}^{\bullet })CH_{2}CH_{3}+Cl_{2}{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{2}Cl)CH_{2}CH_{3}+Cl^{\bullet }+100kJ} } 3.終止:自由基在罕見的情況下消耗[37] 2 C l ∙ → C l 2 + 239 k J {\displaystyle \mathrm {2Cl^{\bullet }{\xrightarrow {}}Cl_{2}+239kJ} } C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 ∙ + C l ∙ → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 C l + 339 k J {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}^{\bullet }+Cl^{\bullet }{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}Cl+339kJ} } C H 3 C H 2 C H ( C H 3 ) C H ∙ C H 3 + C l ∙ → ( C H 3 ) 2 C H C H 2 C H ( C l ) C H 3 + 339 k J {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH^{\bullet }CH_{3}+Cl^{\bullet }{\xrightarrow {}}(CH_{3})_{2}CHCH_{2}CH(Cl)CH_{3}+339kJ} } C H 3 C H 2 C ∙ ( C H 3 ) C H 2 C H 3 + C l ∙ → C H 3 C H 2 C ( C l ) ( C H 3 ) C H 2 C H 3 + 339 k J {\displaystyle \mathrm {CH_{3}CH_{2}C^{\bullet }(CH_{3})CH_{2}CH_{3}+Cl^{\bullet }{\xrightarrow {}}CH_{3}CH_{2}C(Cl)(CH_{3})CH_{2}CH_{3}+339kJ} } C H 3 C H 2 C H ( C H 2 ∙ ) C H 2 C H 3 + C l ∙ → C H 3 C H 2 C H ( C H 2 C l ) C H 2 C H 3 + 339 k J {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{2}^{\bullet })CH_{2}CH_{3}+Cl^{\bullet }{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{2}Cl)CH_{2}CH_{3}+339kJ} } 2 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 ∙ → C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 C H 2 C H 2 C H ( C H 3 ) C H 2 C H 3 + 347 k J {\displaystyle \mathrm {2CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}^{\bullet }{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}CH_{2}CH_{2}CH(CH_{3})CH_{2}CH_{3}+347kJ} } 2 C H 3 C H 2 C H ( C H 3 ) C H ∙ C H 3 → C H 3 C H 2 C H ( C H 3 ) C H ( C H 3 ) C H ( C H 3 ) C H ( C H 3 ) C H 2 C H 3 + 347 k J {\displaystyle \mathrm {2CH_{3}CH_{2}CH(CH_{3})CH^{\bullet }CH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{3})CH(CH_{3})CH(CH_{3})CH(CH_{3})CH_{2}CH_{3}+347kJ} } 2 C H 3 C H 2 C ∙ ( C H 3 ) C H 2 C H 3 → ( C H 3 C H 2 ) 2 C ( C H 3 ) C ( C H 3 ) ( C H 3 C H 2 ) 2 + 347 k J {\displaystyle \mathrm {2CH_{3}CH_{2}C^{\bullet }(CH_{3})CH_{2}CH_{3}{\xrightarrow {}}(CH_{3}CH_{2})_{2}C(CH_{3})C(CH_{3})(CH_{3}CH_{2})_{2}+347kJ} } [38] 2 C H 3 C H 2 C H ( C H 2 ∙ ) C H 2 C H 3 → C H 3 C H 2 C H ( C H 2 C H 3 ) C H 2 C H 2 C H ( C H 2 C H 3 ) C H 2 C H 3 + 347 k J {\displaystyle \mathrm {2CH_{3}CH_{2}CH(CH_{2}^{\bullet })CH_{2}CH_{3}{\xrightarrow {}}CH_{3}CH_{2}CH(CH_{2}CH_{3})CH_{2}CH_{2}CH(CH_{2}CH_{3})CH_{2}CH_{3}+347kJ} } 然而,在製造單鹵化物時,實際上難以停止反應,如果使用等摩爾量的CH3CH2CH(CH3)CH2CH3和X2 則將產生CH3CH2CH(CH3)CH2CH3的全部鹵素衍生物的混合物 如果使用過量的CH3CH2CH(CH3)CH2CH3,則單一衍生物的產率,由於與自由基遇到和X的機率相關的CH2CH2CH(CH3)CH2CH3(CH3)2的統計機率的增加而大大增加 導致剩餘的X衍生物的生產 碳烯干擾 碳烯(例如[:CH2])反應是極少消耗的,可以插入C-H鍵。 例如 :[39] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + C H 3 C l + K O H → 3 7 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 C H 3 + 2 7 C H 3 C H 2 C H ( C H 3 ) C H ( C H 3 ) 2 + 1 14 C H 3 C H 2 C ( C H 3 ) 2 C H 2 C H 3 + 2 7 C H 3 C H 2 C H ( C H 2 C H 3 ) C H 2 C H 3 + K C l + H 2 O {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+CH_{3}Cl+KOH{\xrightarrow {}}{\frac {3}{7}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}CH_{3}+{\frac {2}{7}}CH_{3}CH_{2}CH(CH_{3})CH(CH_{3})_{2}+{\frac {1}{14}}CH_{3}CH_{2}C(CH_{3})_{2}CH_{2}CH_{3}+{\frac {2}{7}}CH_{3}CH_{2}CH(CH_{2}CH_{3})CH_{2}CH_{3}+KCl+H_{2}O} } 碳烯在六鍵 CH-1,5- 2 -h:6 碳烯在四鍵 2,4-CH-H:4 插鍵CH:1 三個插入物(3)鏈路CH-1' 2 -H):4。 因此,存在3-甲基己烷(〜43%),2,3-二甲基戊烷(〜29%),3,3-二甲基戊烷(〜7%)和乙基戊烷(-29%)的混合物 硝化 與硝酸(HNO3)的蒸氣反應:[40] C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 + H N O 3 → △ a C H 3 C H 2 C H ( C H 3 ) C H 2 C H 2 N O 2 + b C H 3 C H 2 C H ( C H 3 ) C H ( N O 2 ) C H 3 + c C H 3 C H 2 C ( N O 2 ) ( C H 3 ) C H 2 C H 3 + d C H 3 C H 2 C H ( C H 2 N O 2 ) C H 2 C H 3 + H 2 O {\displaystyle \mathrm {CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}+HNO_{3}{\xrightarrow {\triangle }}aCH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{2}NO_{2}+bCH_{3}CH_{2}CH(CH_{3})CH(NO_{2})CH_{3}+cCH_{3}CH_{2}C(NO_{2})(CH_{3})CH_{2}CH_{3}+dCH_{3}CH_{2}CH(CH_{2}NO_{2})CH_{2}CH_{3}+H_{2}O} } 其中0 <A,B,C,D <1,A + B + C + D = 1 添加到多個鏈接 3-甲基戊烷可以在 (CH3CH2)2Cs-(CH3)-Hs+的含義內產生多個鍵合反應。如:[41] ( C H 3 C H 2 ) 2 C H C H 3 + R C H = C H 2 → 0 o C H F ( C H 3 C H 2 ) 2 C ( C H 3 ) C H ( R ) C H 3 {\displaystyle \mathrm {(CH_{3}CH_{2})_{2}CHCH_{3}+RCH=CH_{2}{\xrightarrow[{0^{o}C}]{HF}}(CH_{3}CH_{2})_{2}C(CH_{3})CH(R)CH_{3}} } 催化異構化 2-甲基戊烷可經催化異構化變成己烷,2,2-二甲基丁烷(新己烷)和2,3-二甲基丁烷: C H 3 C H 2 C H 2 C H 2 C H 2 C H 3 ⟵ → A l C l 3 C H 3 C H 2 C H 2 C H ( C H 3 ) 2 ⟵ → A l C l 3 C H 3 C H 2 C H ( C H 3 ) C H 2 C H 3 ⟵ → A l C l 3 ( C H 3 ) 4 C ⟵ → A l C l 3 C H 3 C H ( C H 3 ) C H ( C H 3 ) C H 2 C H 3 {\displaystyle \mathrm {CH_{3}CH_{2}CH_{2}CH_{2}CH_{2}CH_{3}{\stackrel {AlCl_{3}}{\overrightarrow {\longleftarrow }}}CH_{3}CH_{2}CH_{2}CH(CH_{3})_{2}{\stackrel {AlCl_{3}}{\overrightarrow {\longleftarrow }}}CH_{3}CH_{2}CH(CH_{3})CH_{2}CH_{3}{\stackrel {AlCl_{3}}{\overrightarrow {\longleftarrow }}}(CH_{3})_{4}C{\stackrel {AlCl_{3}}{\overrightarrow {\longleftarrow }}}CH_{3}CH(CH_{3})CH(CH_{3})CH_{2}CH_{3}} } 參考文獻Loading content...外部連結Loading content...Loading related searches...Wikiwand - on Seamless Wikipedia browsing. 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