The structure of complex cobordism cohomology of the Eilenberg-Maclane spectrum
up vote
7
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Let $MU$ be the complex bordism spectrum and let $Hmathbb{Z}$ be the Eilenberg-Maclane spectrum.
Is it know what the structure of the complex cobordism cohomology $MU^{*}(Hmathbb{Z})$ is?
EDIT: What if instead $Hmathbb{Z}$, one consider $Hmathbb{Z}/(p)$ for a prime $p$?
at.algebraic-topology homotopy-theory cobordism
asked Nov 14 at 19:06
user438991
1257
add a comment |
up vote
7
down vote
favorite
Let $MU$ be the complex bordism spectrum and let $Hmathbb{Z}$ be the Eilenberg-Maclane spectrum.
Is it know what the structure of the complex cobordism cohomology $MU^{*}(Hmathbb{Z})$ is?
EDIT: What if instead $Hmathbb{Z}$, one consider $Hmathbb{Z}/(p)$ for a prime $p$?
at.algebraic-topology homotopy-theory cobordism
asked Nov 14 at 19:06
user438991
1257
Hrmm.. we know $MU_*Hmathbb{Z}=Hmathbb{Z}_*MU=mathbb{Z}[b_1,b_2,...]$, so we might hope to run the universal coefficient spectral sequence, although the structure as $MU_*$-module is somewhat complicated.
– Denis Nardin
Nov 14 at 19:23
2
If I remember correctly, it is $0$, but I don't remember a reference off the head.
– user43326
Nov 14 at 19:24
add a comment |
up vote
7
down vote
favorite
up vote
7
down vote
favorite
Let $MU$ be the complex bordism spectrum and let $Hmathbb{Z}$ be the Eilenberg-Maclane spectrum.
Is it know what the structure of the complex cobordism cohomology $MU^{*}(Hmathbb{Z})$ is?
EDIT: What if instead $Hmathbb{Z}$, one consider $Hmathbb{Z}/(p)$ for a prime $p$?
at.algebraic-topology homotopy-theory cobordism
asked Nov 14 at 19:06
user438991
1257
Let $MU$ be the complex bordism spectrum and let $Hmathbb{Z}$ be the Eilenberg-Maclane spectrum.
Is it know what the structure of the complex cobordism cohomology $MU^{*}(Hmathbb{Z})$ is?
EDIT: What if instead $Hmathbb{Z}$, one consider $Hmathbb{Z}/(p)$ for a prime $p$?
at.algebraic-topology homotopy-theory cobordism
at.algebraic-topology homotopy-theory cobordism
asked Nov 14 at 19:06
user438991
1257
asked Nov 14 at 19:06
user438991
1257
edited Nov 14 at 19:41
asked Nov 14 at 19:06
user438991
1257
asked Nov 14 at 19:06
user438991
1257
asked Nov 14 at 19:06
user438991
1257
1257
Hrmm.. we know $MU_*Hmathbb{Z}=Hmathbb{Z}_*MU=mathbb{Z}[b_1,b_2,...]$, so we might hope to run the universal coefficient spectral sequence, although the structure as $MU_*$-module is somewhat complicated.
– Denis Nardin
Nov 14 at 19:23
2
If I remember correctly, it is $0$, but I don't remember a reference off the head.
– user43326
Nov 14 at 19:24
add a comment |
Hrmm.. we know $MU_*Hmathbb{Z}=Hmathbb{Z}_*MU=mathbb{Z}[b_1,b_2,...]$, so we might hope to run the universal coefficient spectral sequence, although the structure as $MU_*$-module is somewhat complicated.
– Denis Nardin
Nov 14 at 19:23
2
If I remember correctly, it is $0$, but I don't remember a reference off the head.
– user43326
Nov 14 at 19:24
Hrmm.. we know $MU_*Hmathbb{Z}=Hmathbb{Z}_*MU=mathbb{Z}[b_1,b_2,...]$, so we might hope to run the universal coefficient spectral sequence, although the structure as $MU_*$-module is somewhat complicated.
– Denis Nardin
Nov 14 at 19:23
Hrmm.. we know $MU_*Hmathbb{Z}=Hmathbb{Z}_*MU=mathbb{Z}[b_1,b_2,...]$, so we might hope to run the universal coefficient spectral sequence, although the structure as $MU_*$-module is somewhat complicated.
– Denis Nardin
Nov 14 at 19:23
2
2
If I remember correctly, it is $0$, but I don't remember a reference off the head.
– user43326
Nov 14 at 19:24
If I remember correctly, it is $0$, but I don't remember a reference off the head.
– user43326
Nov 14 at 19:24
add a comment |
1 Answer
1
active
oldest
votes
up vote
12
down vote
One can prove that $mathrm{Map}(Hmathbf{F}_p,MU)$ is contractible. We know that $Hmathbf{F}_p$ is dissonant (Theorem 4.7 of Ravenel's "Localization with Respect to Certain Periodic Homology Theories"), but $MU$ is harmonic (Theorem 4.2 of that paper). Since dissonant spectra (resp. harmonic spectra) are by definition $E$-acyclic (resp. local) for the spectrum $E = bigvee_p E_p$, where $E_p = bigvee_{0leq n<infty} K(n)$, the claim follows. (I just realized that this is Corollary 4.10 of Ravenel's paper.)
It is, however, not the case that $mathrm{Map}(Hmathbf{Z},MU)$ is contractible. (What I wrote previously was incorrect.) The spectrum $Hmathbf{Z}$ is not dissonant, so we cannot immediately apply the above argument. Since $MU$ is harmonic, there is, however, an equivalence between $mathrm{Map}(Hmathbf{Z},MU)$ and $mathrm{Map}(L_E Hmathbf{Z},MU)$. We therefore need to understand $L_E Hmathbf{Z}$. By the discussion at this question, we can conclude that $L_{E_p} Hmathbf{Z} simeq Hmathbf{Q}_p$. It therefore suffices to understand $MU^ast(Hmathbf{Q})$. But $Hmathbf{Q}$ is the colimit of multiplication by $2,3,5,7,cdots$ on the sphere, so $MU^ast(Hmathbf{Q})$ admits a description in terms of $lim^0$ and $lim^1$ of multiplication by $2,3,5,7,cdots$ on $pi_ast MU$. In particular, the $lim^1$ term is $mathrm{Ext}^1_mathbf{Z}(mathbf{Q,Z}) cong widehat{mathbf{Z}}/mathbf{Z}$.
answered Nov 14 at 20:24
skd
1,6961623
1
I don't think that the last bit of this is right. $MU^0(Hmathbb{Q}_p)$ is not a ring. We can write $Hmathbb{Q}=Smathbb{Q}$ as the telescope of multiplication by $2,3,4,5,dotsc$ on $H$ or on $S$. From the first description together with $F(H/n,MU)=0$ we get $F(H,MU)=F(Hmathbb{Q},MU)=F(Smathbb{Q},MU)$. The second description relates $[Smathbb{Q},MU]_*$ to $lim^0$ and $lim^1$ of multiplication by $2,3,4,dotsc$ on $pi_*(MU)$. Here $lim^0=0$ but $lim^1$ involves $text{Ext}(mathbb{Q},mathbb{Z})=widehat{mathbb{Z}}/mathbb{Z}$.
– Neil Strickland
Nov 14 at 20:59
@NeilStrickland you're right, thanks! I'll edit my answer.
– skd
Nov 14 at 21:04
4
Just a general comment that this isn't so "chromatic": It's a theorem of Margolis that maps out of $Hmathbb{F}_p$ to a bounded below spectrum of finite type are the same as maps of modules over the Steenrod algebra on cohomology into $mathcal{A}^*$; this is already enough to show that $MU^*(Hmathbb{F}_p) = 0$. Then the sequence $mathbb{Z} to mathbb{Q} to mathbb{Q}/mathbb{Z}$ tells you that $Y^*mathrm{H}mathbb{Z}$ will always be a humongous sum of $mathrm{Ext}(mathbb{Q}, ?)$'s if $Y^*(Hmathbb{F}_p)$ vanishes for all $p$. TY Lin's paper on duality and EM spectra has more on this.
– Dylan Wilson
Nov 14 at 23:21
Good to know, thanks @DylanWilson!
– skd
Nov 15 at 1:03
add a comment |
1 Answer
1
active
oldest
votes
1 Answer
1
active
oldest
votes
active
oldest
votes
active
oldest
votes
up vote
12
down vote
One can prove that $mathrm{Map}(Hmathbf{F}_p,MU)$ is contractible. We know that $Hmathbf{F}_p$ is dissonant (Theorem 4.7 of Ravenel's "Localization with Respect to Certain Periodic Homology Theories"), but $MU$ is harmonic (Theorem 4.2 of that paper). Since dissonant spectra (resp. harmonic spectra) are by definition $E$-acyclic (resp. local) for the spectrum $E = bigvee_p E_p$, where $E_p = bigvee_{0leq n<infty} K(n)$, the claim follows. (I just realized that this is Corollary 4.10 of Ravenel's paper.)
It is, however, not the case that $mathrm{Map}(Hmathbf{Z},MU)$ is contractible. (What I wrote previously was incorrect.) The spectrum $Hmathbf{Z}$ is not dissonant, so we cannot immediately apply the above argument. Since $MU$ is harmonic, there is, however, an equivalence between $mathrm{Map}(Hmathbf{Z},MU)$ and $mathrm{Map}(L_E Hmathbf{Z},MU)$. We therefore need to understand $L_E Hmathbf{Z}$. By the discussion at this question, we can conclude that $L_{E_p} Hmathbf{Z} simeq Hmathbf{Q}_p$. It therefore suffices to understand $MU^ast(Hmathbf{Q})$. But $Hmathbf{Q}$ is the colimit of multiplication by $2,3,5,7,cdots$ on the sphere, so $MU^ast(Hmathbf{Q})$ admits a description in terms of $lim^0$ and $lim^1$ of multiplication by $2,3,5,7,cdots$ on $pi_ast MU$. In particular, the $lim^1$ term is $mathrm{Ext}^1_mathbf{Z}(mathbf{Q,Z}) cong widehat{mathbf{Z}}/mathbf{Z}$.
answered Nov 14 at 20:24
skd
1,6961623
1
I don't think that the last bit of this is right. $MU^0(Hmathbb{Q}_p)$ is not a ring. We can write $Hmathbb{Q}=Smathbb{Q}$ as the telescope of multiplication by $2,3,4,5,dotsc$ on $H$ or on $S$. From the first description together with $F(H/n,MU)=0$ we get $F(H,MU)=F(Hmathbb{Q},MU)=F(Smathbb{Q},MU)$. The second description relates $[Smathbb{Q},MU]_*$ to $lim^0$ and $lim^1$ of multiplication by $2,3,4,dotsc$ on $pi_*(MU)$. Here $lim^0=0$ but $lim^1$ involves $text{Ext}(mathbb{Q},mathbb{Z})=widehat{mathbb{Z}}/mathbb{Z}$.
– Neil Strickland
Nov 14 at 20:59
@NeilStrickland you're right, thanks! I'll edit my answer.
– skd
Nov 14 at 21:04
4
Just a general comment that this isn't so "chromatic": It's a theorem of Margolis that maps out of $Hmathbb{F}_p$ to a bounded below spectrum of finite type are the same as maps of modules over the Steenrod algebra on cohomology into $mathcal{A}^*$; this is already enough to show that $MU^*(Hmathbb{F}_p) = 0$. Then the sequence $mathbb{Z} to mathbb{Q} to mathbb{Q}/mathbb{Z}$ tells you that $Y^*mathrm{H}mathbb{Z}$ will always be a humongous sum of $mathrm{Ext}(mathbb{Q}, ?)$'s if $Y^*(Hmathbb{F}_p)$ vanishes for all $p$. TY Lin's paper on duality and EM spectra has more on this.
– Dylan Wilson
Nov 14 at 23:21
Good to know, thanks @DylanWilson!
– skd
Nov 15 at 1:03
add a comment |
up vote
12
down vote
One can prove that $mathrm{Map}(Hmathbf{F}_p,MU)$ is contractible. We know that $Hmathbf{F}_p$ is dissonant (Theorem 4.7 of Ravenel's "Localization with Respect to Certain Periodic Homology Theories"), but $MU$ is harmonic (Theorem 4.2 of that paper). Since dissonant spectra (resp. harmonic spectra) are by definition $E$-acyclic (resp. local) for the spectrum $E = bigvee_p E_p$, where $E_p = bigvee_{0leq n<infty} K(n)$, the claim follows. (I just realized that this is Corollary 4.10 of Ravenel's paper.)
It is, however, not the case that $mathrm{Map}(Hmathbf{Z},MU)$ is contractible. (What I wrote previously was incorrect.) The spectrum $Hmathbf{Z}$ is not dissonant, so we cannot immediately apply the above argument. Since $MU$ is harmonic, there is, however, an equivalence between $mathrm{Map}(Hmathbf{Z},MU)$ and $mathrm{Map}(L_E Hmathbf{Z},MU)$. We therefore need to understand $L_E Hmathbf{Z}$. By the discussion at this question, we can conclude that $L_{E_p} Hmathbf{Z} simeq Hmathbf{Q}_p$. It therefore suffices to understand $MU^ast(Hmathbf{Q})$. But $Hmathbf{Q}$ is the colimit of multiplication by $2,3,5,7,cdots$ on the sphere, so $MU^ast(Hmathbf{Q})$ admits a description in terms of $lim^0$ and $lim^1$ of multiplication by $2,3,5,7,cdots$ on $pi_ast MU$. In particular, the $lim^1$ term is $mathrm{Ext}^1_mathbf{Z}(mathbf{Q,Z}) cong widehat{mathbf{Z}}/mathbf{Z}$.
answered Nov 14 at 20:24
skd
1,6961623
1
I don't think that the last bit of this is right. $MU^0(Hmathbb{Q}_p)$ is not a ring. We can write $Hmathbb{Q}=Smathbb{Q}$ as the telescope of multiplication by $2,3,4,5,dotsc$ on $H$ or on $S$. From the first description together with $F(H/n,MU)=0$ we get $F(H,MU)=F(Hmathbb{Q},MU)=F(Smathbb{Q},MU)$. The second description relates $[Smathbb{Q},MU]_*$ to $lim^0$ and $lim^1$ of multiplication by $2,3,4,dotsc$ on $pi_*(MU)$. Here $lim^0=0$ but $lim^1$ involves $text{Ext}(mathbb{Q},mathbb{Z})=widehat{mathbb{Z}}/mathbb{Z}$.
– Neil Strickland
Nov 14 at 20:59
@NeilStrickland you're right, thanks! I'll edit my answer.
– skd
Nov 14 at 21:04
4
Just a general comment that this isn't so "chromatic": It's a theorem of Margolis that maps out of $Hmathbb{F}_p$ to a bounded below spectrum of finite type are the same as maps of modules over the Steenrod algebra on cohomology into $mathcal{A}^*$; this is already enough to show that $MU^*(Hmathbb{F}_p) = 0$. Then the sequence $mathbb{Z} to mathbb{Q} to mathbb{Q}/mathbb{Z}$ tells you that $Y^*mathrm{H}mathbb{Z}$ will always be a humongous sum of $mathrm{Ext}(mathbb{Q}, ?)$'s if $Y^*(Hmathbb{F}_p)$ vanishes for all $p$. TY Lin's paper on duality and EM spectra has more on this.
– Dylan Wilson
Nov 14 at 23:21
Good to know, thanks @DylanWilson!
– skd
Nov 15 at 1:03
add a comment |
up vote
12
down vote
up vote
12
down vote
One can prove that $mathrm{Map}(Hmathbf{F}_p,MU)$ is contractible. We know that $Hmathbf{F}_p$ is dissonant (Theorem 4.7 of Ravenel's "Localization with Respect to Certain Periodic Homology Theories"), but $MU$ is harmonic (Theorem 4.2 of that paper). Since dissonant spectra (resp. harmonic spectra) are by definition $E$-acyclic (resp. local) for the spectrum $E = bigvee_p E_p$, where $E_p = bigvee_{0leq n<infty} K(n)$, the claim follows. (I just realized that this is Corollary 4.10 of Ravenel's paper.)
It is, however, not the case that $mathrm{Map}(Hmathbf{Z},MU)$ is contractible. (What I wrote previously was incorrect.) The spectrum $Hmathbf{Z}$ is not dissonant, so we cannot immediately apply the above argument. Since $MU$ is harmonic, there is, however, an equivalence between $mathrm{Map}(Hmathbf{Z},MU)$ and $mathrm{Map}(L_E Hmathbf{Z},MU)$. We therefore need to understand $L_E Hmathbf{Z}$. By the discussion at this question, we can conclude that $L_{E_p} Hmathbf{Z} simeq Hmathbf{Q}_p$. It therefore suffices to understand $MU^ast(Hmathbf{Q})$. But $Hmathbf{Q}$ is the colimit of multiplication by $2,3,5,7,cdots$ on the sphere, so $MU^ast(Hmathbf{Q})$ admits a description in terms of $lim^0$ and $lim^1$ of multiplication by $2,3,5,7,cdots$ on $pi_ast MU$. In particular, the $lim^1$ term is $mathrm{Ext}^1_mathbf{Z}(mathbf{Q,Z}) cong widehat{mathbf{Z}}/mathbf{Z}$.
answered Nov 14 at 20:24
skd
1,6961623
One can prove that $mathrm{Map}(Hmathbf{F}_p,MU)$ is contractible. We know that $Hmathbf{F}_p$ is dissonant (Theorem 4.7 of Ravenel's "Localization with Respect to Certain Periodic Homology Theories"), but $MU$ is harmonic (Theorem 4.2 of that paper). Since dissonant spectra (resp. harmonic spectra) are by definition $E$-acyclic (resp. local) for the spectrum $E = bigvee_p E_p$, where $E_p = bigvee_{0leq n<infty} K(n)$, the claim follows. (I just realized that this is Corollary 4.10 of Ravenel's paper.)
It is, however, not the case that $mathrm{Map}(Hmathbf{Z},MU)$ is contractible. (What I wrote previously was incorrect.) The spectrum $Hmathbf{Z}$ is not dissonant, so we cannot immediately apply the above argument. Since $MU$ is harmonic, there is, however, an equivalence between $mathrm{Map}(Hmathbf{Z},MU)$ and $mathrm{Map}(L_E Hmathbf{Z},MU)$. We therefore need to understand $L_E Hmathbf{Z}$. By the discussion at this question, we can conclude that $L_{E_p} Hmathbf{Z} simeq Hmathbf{Q}_p$. It therefore suffices to understand $MU^ast(Hmathbf{Q})$. But $Hmathbf{Q}$ is the colimit of multiplication by $2,3,5,7,cdots$ on the sphere, so $MU^ast(Hmathbf{Q})$ admits a description in terms of $lim^0$ and $lim^1$ of multiplication by $2,3,5,7,cdots$ on $pi_ast MU$. In particular, the $lim^1$ term is $mathrm{Ext}^1_mathbf{Z}(mathbf{Q,Z}) cong widehat{mathbf{Z}}/mathbf{Z}$.
answered Nov 14 at 20:24
skd
1,6961623
edited Nov 14 at 21:12
answered Nov 14 at 20:24
skd
1,6961623
answered Nov 14 at 20:24
skd
1,6961623
answered Nov 14 at 20:24
skd
1,6961623
1,6961623
1
I don't think that the last bit of this is right. $MU^0(Hmathbb{Q}_p)$ is not a ring. We can write $Hmathbb{Q}=Smathbb{Q}$ as the telescope of multiplication by $2,3,4,5,dotsc$ on $H$ or on $S$. From the first description together with $F(H/n,MU)=0$ we get $F(H,MU)=F(Hmathbb{Q},MU)=F(Smathbb{Q},MU)$. The second description relates $[Smathbb{Q},MU]_*$ to $lim^0$ and $lim^1$ of multiplication by $2,3,4,dotsc$ on $pi_*(MU)$. Here $lim^0=0$ but $lim^1$ involves $text{Ext}(mathbb{Q},mathbb{Z})=widehat{mathbb{Z}}/mathbb{Z}$.
– Neil Strickland
Nov 14 at 20:59
@NeilStrickland you're right, thanks! I'll edit my answer.
– skd
Nov 14 at 21:04
4
Just a general comment that this isn't so "chromatic": It's a theorem of Margolis that maps out of $Hmathbb{F}_p$ to a bounded below spectrum of finite type are the same as maps of modules over the Steenrod algebra on cohomology into $mathcal{A}^*$; this is already enough to show that $MU^*(Hmathbb{F}_p) = 0$. Then the sequence $mathbb{Z} to mathbb{Q} to mathbb{Q}/mathbb{Z}$ tells you that $Y^*mathrm{H}mathbb{Z}$ will always be a humongous sum of $mathrm{Ext}(mathbb{Q}, ?)$'s if $Y^*(Hmathbb{F}_p)$ vanishes for all $p$. TY Lin's paper on duality and EM spectra has more on this.
– Dylan Wilson
Nov 14 at 23:21
Good to know, thanks @DylanWilson!
– skd
Nov 15 at 1:03
add a comment |
1
I don't think that the last bit of this is right. $MU^0(Hmathbb{Q}_p)$ is not a ring. We can write $Hmathbb{Q}=Smathbb{Q}$ as the telescope of multiplication by $2,3,4,5,dotsc$ on $H$ or on $S$. From the first description together with $F(H/n,MU)=0$ we get $F(H,MU)=F(Hmathbb{Q},MU)=F(Smathbb{Q},MU)$. The second description relates $[Smathbb{Q},MU]_*$ to $lim^0$ and $lim^1$ of multiplication by $2,3,4,dotsc$ on $pi_*(MU)$. Here $lim^0=0$ but $lim^1$ involves $text{Ext}(mathbb{Q},mathbb{Z})=widehat{mathbb{Z}}/mathbb{Z}$.
– Neil Strickland
Nov 14 at 20:59
@NeilStrickland you're right, thanks! I'll edit my answer.
– skd
Nov 14 at 21:04
4
Just a general comment that this isn't so "chromatic": It's a theorem of Margolis that maps out of $Hmathbb{F}_p$ to a bounded below spectrum of finite type are the same as maps of modules over the Steenrod algebra on cohomology into $mathcal{A}^*$; this is already enough to show that $MU^*(Hmathbb{F}_p) = 0$. Then the sequence $mathbb{Z} to mathbb{Q} to mathbb{Q}/mathbb{Z}$ tells you that $Y^*mathrm{H}mathbb{Z}$ will always be a humongous sum of $mathrm{Ext}(mathbb{Q}, ?)$'s if $Y^*(Hmathbb{F}_p)$ vanishes for all $p$. TY Lin's paper on duality and EM spectra has more on this.
– Dylan Wilson
Nov 14 at 23:21
Good to know, thanks @DylanWilson!
– skd
Nov 15 at 1:03
1
1
I don't think that the last bit of this is right. $MU^0(Hmathbb{Q}_p)$ is not a ring. We can write $Hmathbb{Q}=Smathbb{Q}$ as the telescope of multiplication by $2,3,4,5,dotsc$ on $H$ or on $S$. From the first description together with $F(H/n,MU)=0$ we get $F(H,MU)=F(Hmathbb{Q},MU)=F(Smathbb{Q},MU)$. The second description relates $[Smathbb{Q},MU]_*$ to $lim^0$ and $lim^1$ of multiplication by $2,3,4,dotsc$ on $pi_*(MU)$. Here $lim^0=0$ but $lim^1$ involves $text{Ext}(mathbb{Q},mathbb{Z})=widehat{mathbb{Z}}/mathbb{Z}$.
– Neil Strickland
Nov 14 at 20:59
I don't think that the last bit of this is right. $MU^0(Hmathbb{Q}_p)$ is not a ring. We can write $Hmathbb{Q}=Smathbb{Q}$ as the telescope of multiplication by $2,3,4,5,dotsc$ on $H$ or on $S$. From the first description together with $F(H/n,MU)=0$ we get $F(H,MU)=F(Hmathbb{Q},MU)=F(Smathbb{Q},MU)$. The second description relates $[Smathbb{Q},MU]_*$ to $lim^0$ and $lim^1$ of multiplication by $2,3,4,dotsc$ on $pi_*(MU)$. Here $lim^0=0$ but $lim^1$ involves $text{Ext}(mathbb{Q},mathbb{Z})=widehat{mathbb{Z}}/mathbb{Z}$.
– Neil Strickland
Nov 14 at 20:59
@NeilStrickland you're right, thanks! I'll edit my answer.
– skd
Nov 14 at 21:04
@NeilStrickland you're right, thanks! I'll edit my answer.
– skd
Nov 14 at 21:04
4
4
Just a general comment that this isn't so "chromatic": It's a theorem of Margolis that maps out of $Hmathbb{F}_p$ to a bounded below spectrum of finite type are the same as maps of modules over the Steenrod algebra on cohomology into $mathcal{A}^*$; this is already enough to show that $MU^*(Hmathbb{F}_p) = 0$. Then the sequence $mathbb{Z} to mathbb{Q} to mathbb{Q}/mathbb{Z}$ tells you that $Y^*mathrm{H}mathbb{Z}$ will always be a humongous sum of $mathrm{Ext}(mathbb{Q}, ?)$'s if $Y^*(Hmathbb{F}_p)$ vanishes for all $p$. TY Lin's paper on duality and EM spectra has more on this.
– Dylan Wilson
Nov 14 at 23:21
Just a general comment that this isn't so "chromatic": It's a theorem of Margolis that maps out of $Hmathbb{F}_p$ to a bounded below spectrum of finite type are the same as maps of modules over the Steenrod algebra on cohomology into $mathcal{A}^*$; this is already enough to show that $MU^*(Hmathbb{F}_p) = 0$. Then the sequence $mathbb{Z} to mathbb{Q} to mathbb{Q}/mathbb{Z}$ tells you that $Y^*mathrm{H}mathbb{Z}$ will always be a humongous sum of $mathrm{Ext}(mathbb{Q}, ?)$'s if $Y^*(Hmathbb{F}_p)$ vanishes for all $p$. TY Lin's paper on duality and EM spectra has more on this.
– Dylan Wilson
Nov 14 at 23:21
Good to know, thanks @DylanWilson!
– skd
Nov 15 at 1:03
Good to know, thanks @DylanWilson!
– skd
Nov 15 at 1:03
add a comment |
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Hrmm.. we know $MU_*Hmathbb{Z}=Hmathbb{Z}_*MU=mathbb{Z}[b_1,b_2,...]$, so we might hope to run the universal coefficient spectral sequence, although the structure as $MU_*$-module is somewhat complicated.
– Denis Nardin
Nov 14 at 19:23
2
If I remember correctly, it is $0$, but I don't remember a reference off the head.
– user43326
Nov 14 at 19:24