[heidi_96]

In a project, a complex formulated as [⁹⁹RuCl₂(dppe)₂] was synthesised. The ³¹P {¹H} NMR specturm of this shows one signal as a 1:1:1:1:1:1 sextet.
Account for this observation.

dppe is the bidentate ligand (C₆H₅)₂PCH₂CH₂P(C₆H₅)₂

I(³¹P) = 1/2
no coupling to Cl observed

Could anyone help me with this question, and explain how a 1:1:1:1:1:1 sextet is formed,
any help much appreciated,

Best Regards,
Heidi

[Babcock_Hall]

According to forum rules, you must show an attempt first before anyone can help you.  Maybe you could clarify one thing as well:  do you mean that the P-31 was acquired coupled to H-1, or do you mean decoupled?

[heidi_96]

Sorry this is my first post and i didn't realize,
As for an attempt i cant seen to figure out what one signal as a 1:1:1:1:1:1 sextant implies, whether its a triplet of doublets or that all atoms coupling to the Rh are of equal value... i've tried googling it with no success which is why i am trying on this!

Its a past exam question and doesnt state whether its coupled or decoupled... but i think its decoupled

[Babcock_Hall]

What do you know about the nuclear spin quantum numbers?