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Informe 2 Laboratorio Quimica Organica, Lab Reports of Chemistry

Advanced Technology Institute Chemistry

Laboratorio online USM 2020 echo de manera colaborativa

Typology: Lab Reports

2019/2020

Uploaded on 10/02/2021

mama-del-irirsh 🇺🇸

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Laboratorio de Química Orgánica QUI-028

Profesores: Luis Espinoza C, Mauricio Osorio

INFORME PRÁCTICO N°2

SÍNTESIS DE HALUROS DE ALQUILO, REACCIÓN DE SUSTITUCIÓN SN2

Nombre: Matias Gutiérrez C.

Rol: 201851502-7

Campus: San Joaquin

1. Para la reacción SN2 vista en el video:

Determine la cantidad de bromuro de n-butilo (moles, gramos y mL) teórico que debiese

obtener utilizando las cantidades experimentales y determine el rendimiento (%) según los

mL del producto obtenido (video). (25 puntos)

Datos

bromuro de n-butilo: 1,286 [g/mL] a 24 ºC); 137,02 [g/mol]

n-butanol: 810 [kg/m3]; 74,121 [g/mol]

bromuro de sodio: 102,89 [g/mol]

Ácido sulfúrico: 95%; 98,08 [g/mol]

Sulfato acido de sodio: 120, 06 [g/mol]

Agua: 18,02 [g/mol]

:

Cálculos:

𝟒,𝟒[𝒎𝑳]× 𝟏, 𝟐𝟖𝟔[𝒈

𝒎𝑳]= 𝟓,𝟔𝟓𝟖[𝒈]

𝟓,𝟔𝟓𝟖[𝒈]÷𝟏𝟑𝟕,𝟎𝟐[𝒈

𝒎𝒐𝒍]= 𝟎,𝟎𝟒𝟏[𝒎𝒐𝒍]

bromuro de n-

butilo (mL)

video

Gramos (g)

Cant. de sustancia

(mol)

Rendimiento (%)

4,4 [mL]

5,658[g]

0,041[mol]

47,12%

Partial preview of the text

Download Informe 2 Laboratorio Quimica Organica and more Lab Reports Chemistry in PDF only on Docsity!

Profesores: Luis Espinoza C, Mauricio Osorio INFORME PRÁCTICO N° 2 SÍNTESIS DE HALUROS DE ALQUILO, REACCIÓN DE SUSTITUCIÓN SN 2 Nombre: Matias Gutiérrez C. Rol: 201851502 - 7 Campus: San Joaquin

Para la reacción SN 2 vista en el video : Determine la cantidad de bromuro de n - butilo (moles, gramos y mL) teórico que debiese obtener utilizando las cantidades experimentales y determine el rendimiento (%) según los mL del producto obtenido (video). (25 puntos) Datos bromuro de n-butilo: 1,286 [g/mL] a 24 ºC); 137,02 [g/mol] n-butanol: 810 [kg/m^3 ]; 74,121 [g/mol] bromuro de sodio: 102,89 [g/mol] Ácido sulfúrico: 95%; 98,08 [g/mol] Sulfato acido de sodio: 120, 06 [g/mol] Agua: 18,02 [g/mol] : Cálculos: 𝟒, 𝟒[𝒎𝑳] × 𝟏, 𝟐𝟖𝟔 [

] = 𝟓, 𝟔𝟓𝟖[𝒈]

𝟓, 𝟔𝟓𝟖[𝒈] ÷ 𝟏𝟑𝟕, 𝟎𝟐 [

] = 𝟎, 𝟎𝟒𝟏[𝒎𝒐𝒍]

bromuro de n - butilo (mL) video Gramos (g) Cant. de sustancia (mol) Rendimiento (%) 4,4 [mL] 5,658[g] 0,041[mol] 47,12%