Technology Process of C41H54O5
There total 1 articles about C41H54O5 which
guide to synthetic route it.
The literature collected by LookChem mainly comes from the sharing of users and the free literature resources found by Internet computing technology. We keep the original model of the professional version of literature to make it easier and faster for users to retrieve and use. At the same time, we analyze and calculate the most feasible synthesis route with the highest yield for your reference as below:
synthetic route:
- Guidance literature:
-
With
boron trifluoride diethyl etherate; acetic acid; sodium nitrite;
at 20 ℃;
for 2h;
Inert atmosphere;
DOI:10.1021/jo102054r
- Guidance literature:
-
With
hydrazine hydrate; potassium hydroxide;
In
ethylene glycol;
Inert atmosphere;
DOI:10.1021/jo102054r
- Guidance literature:
-
Multi-step reaction with 6 steps
1: hydrazine hydrate; potassium hydroxide / ethylene glycol / Inert atmosphere
2: pyridine hydrochloride / 2 h / 135 °C / Inert atmosphere
3: chromium(VI) oxide; sodium acetate; acetic anhydride; acetic acid / water / 0.67 h / 0 °C / Inert atmosphere
4: aluminum oxide / benzene / 2.5 h / 20 °C / Inert atmosphere
5: water; N-bromoacetamide / tetrahydrofuran; acetone / 28 h / 20 °C / Inert atmosphere; Darkness
6: triethyl borane; tri-n-butyl-tin hydride / hexane; dichloromethane / 0.58 h / 20 °C / Inert atmosphere; In air
With
chromium(VI) oxide; aluminum oxide; triethyl borane; water; tri-n-butyl-tin hydride; sodium acetate; pyridine hydrochloride; acetic anhydride; hydrazine hydrate; acetic acid; potassium hydroxide; N-bromoacetamide;
In
tetrahydrofuran; hexane; dichloromethane; water; ethylene glycol; acetone; benzene;
1: Wolff-Kishner reduction / 2: Marker's degradation;
DOI:10.1021/jo102054r