2,723 research outputs found
Tight focusing of plane waves from micro-fabricated spherical mirrors
We derive a formula for the light field of a monochromatic plane wave that is
truncated and reflected by a spherical mirror. Our formula is valid even for
deep mirrors, where the aperture radius approaches the radius of curvature. We
apply this result to micro-fabricated mirrors whose size scales are in the
range of tens to hundreds of wavelengths, and show that sub-wavelength spot
sizes can be achieved. This opens up the possibility of scalable arrays of
tightly focused optical dipole traps without the need for high-performance
optical systems.Comment: 8 pages, 5 color figures, 1 .sty file; changes made in response to
referee comments; published in Optics Expres
Conditional quantum logic using two atomic qubits
In this paper we propose and analyze a feasible scheme where the detection of
a single scattered photon from two trapped atoms or ions performs a conditional
unitary operation on two qubits. As examples we consider the preparation of all
four Bell states, the reverse operation that is a Bell measurement, and a CNOT
gate. We study the effect of atomic motion and multiple scattering, by
evaluating Bell inequalities violations, and by calculating the CNOT gate
fidelity.Comment: 23 pages, 8 figures in 11 file
Estimating the potential of U.S. urban infrastructure albedo enhancement as climate mitigation in the face of climate variability
The climate mitigation potential of U.S. urban infrastructure albedo enhancement is explored using multidecadal regional climate simulations. Increasing albedo from 0.2 to 0.4 results in summer daytime surface temperature decreases of 1.5°C, substantial reductions in health-related heat (50% decrease in days with danger heat advisory) and decreases in energy demand for air conditioning (15% decrease in cooling degree days) over the U.S. urban areas. No significant impact is found outside urban areas. Most regional modeling studies rely on short simulations; here, we use multidecadal simulations to extract the forced signal from the noise of climate variability. Achieving a ±0.5°C margin of error for the projected impacts of urban albedo enhancement at a 95% confidence level entails using at least 5 simulation years. Finally, single-year higher-resolution simulations, requiring the same computing power as the multidecadal coarser-resolution simulations, add little value other than confirming the overall magnitude of our estimates.This work was supported by the Concrete Sustainability Hub at MIT, with sponsorship provided by the Portland Cement Association and the RMC Research & Education Foundation, and by the US Department of Energy, Office of Biological and Environmental Research, under grant DE-FG02-94ER61937. The MIT Joint Program on the Science and Policy of Global Change is funded by a number of federal agencies and a consortium of 40 industrial and foundation sponsors. For a complete list of sponsors, see http://globalchange.mit.edu
The influence of the synoptic regime on stable water isotopes in precipitation at Dome C, East Antarctica
Abstract. The correct derivation of paleotemperatures from ice cores requires exact knowledge of all processes involved before and after the deposition of snow and the subsequent formation of ice. At the Antarctic deep ice core drilling site Dome C, a unique data set of daily precipitation amount, type, and stable water isotope ratios is available that enables us to study in detail atmospheric processes that influence the stable water isotope ratio of precipitation. Meteorological data from both automatic weather station and a mesoscale atmospheric model were used to investigate how different atmospheric flow patterns determine the precipitation parameters. A classification of synoptic situations that cause precipitation at Dome C was established and, together with back-trajectory calculations, was utilized to estimate moisture source areas. With the resulting source area conditions (wind speed, sea surface temperature, and relative humidity) as input, the precipitation stable isotopic composition was modeled using the so-called Mixed Cloud Isotope Model (MCIM). The model generally underestimates the depletion of 18O in precipitation, which was not improved by using condensation temperature rather than inversion temperature. Contrary to the assumption widely used in ice core studies, a more northern moisture source does not necessarily mean stronger isotopic fractionation. This is due to the fact that snowfall events at Dome C are often associated with warm air advection due to amplification of planetary waves, which considerably increases the site temperature and thus reduces the temperature difference between source area and deposition site. In addition, no correlation was found between relative humidity at the moisture source and the deuterium excess in precipitation. The significant difference in the isotopic signal of hoarfrost and diamond dust was shown to disappear after removal of seasonality. This study confirms the results of an earlier study carried out at Dome Fuji with a shorter data set using the same methods
Constraints on mantle ^3He fluxes and deep-sea circulation from an oceanic general circulation model
We have simulated the steady-state distribution of helium in the deep sea to investigate the magnitude and spatial and temporal variability of mantle degassing and to characterize deep-sea circulation and ventilation. The simulation was produced by linking a simple source function for helium injected at mid-ocean ridges with an oceanic general circulation model (GCM). By assuming that the flux of mantle helium is linearly proportional to the seafloor spreading rate and by using previous estimates for the total flux of mantle helium into the oceans, the GCM yields an oceanic ^3He distribution which is in qualitative agreement with observations both in overall magnitude and in general distribution. This provides new evidence that the flux of mantle ^3He into the oceans is about 1000 mol/yr and that mid-ocean ridges are the dominant source of mantle helium. Although the match with observations is good in the Pacific and Indian Oceans, the simulated ^3He anomalies throughout the Atlantic Ocean are much higher than has been measured. Because the GCM is thought to reproduce Atlantic circulation reasonably well, this discrepancy suggests an error in the helium source function. Either helium injection is not a linear function of seafloor emplacement rate, or eruption and concomitant degassing are highly episodic at the slow spreading rates characteristic of the Mid-Atlantic Ridge (MAR). The latter explanation would imply minimal volcanic activity along the entire length of the MAR over the last few centuries. In addition to constraints on the degassing flux, our work provides information on the transport and ventilation of deep ocean waters and constrains the degree to which current GCMs can reproduce deep-water circulation patterns. While the results generally support the GCM's abyssal circulation, our simulation reveals regions of overly-intense lateral diffusion and upwelling in the model, particularly in the equatorial Pacific. Similarly, there appears to be insufficient production of He-ventilated bottom waters in the model Antarctic. These observations suggest that further refinement of the GCM abyssal circulation is required
CliCrop: a Crop Water-Stress and Irrigation Demand Model for an Integrated Global Assessment Model Approach
http://globalchange.mit.edu/research/publications/2264This paper describes the use of the CliCrop model in the context of climate change general assessment
modeling. The MIT Integrated Global System Model (IGSM) framework is a global integrated assessment
modeling framework that uses emission predictions and economic outputs from the MIT Emission Prediction
and Policy Analysis (EPPA) model and earth system modeling predictions from the IGSM to drive a
land system component, a crop model (CliCrop) and a Water Resource System (WRS) model. The global
Agriculture and Water System are dependant upon and interlinked with the global climate system. As irrigated
agriculture provides 60% of grains and 40% of all crop production on 20% of global crop lands and
accounts for 80% of global water consumption, it is crucial that the agricultural-water linkage be properly
modeled. Crop models are used to predict future yields, irrigation demand and to understand the effect of
crop and soil type on food productivity and soil fertility. In the context of an integrated global assessment, a
crop water-stress and irrigation demand model must meet certain specifications that are different for other
crop models; it needs to be global, fast and generic with a minimal set of inputs. This paper describes
how CliCrop models the physical and biological processes of crop growth and yield production and its use
within the MIT Integrated Global System Model (IGSM) framework, including the data inputs. This paper
discusses the global data bases used as input to CliCrop and provides a comparison of the accuracy of
CliCrop with the detailed biological-based crop model DSSAT as well as with measured crop yields over
the U.S. at the country level using reanalyzed weather data. In both cases CliCrop performed well and the
analysis validated its use for climate change impact assessment. We then show why correctly modeling the
soil is important for irrigation demand calculation, especially in temperate areas. Finally, we discuss a
method to estimate actual water withdrawal from modeled physical crop requirements using U.S. historical
data.The initial funding for CliCrop was provided by USAID under a program on climate change
adaptation in Niger. Further funding was provided by UN University World Institute for Development Economics
Research for the Application and Development of CliCrop in Africa, the authors would like to
particularly thank Prof. Finn Tarp, Prof. Channing Arndt and Dr. James Thurlow for their
support. The authors also would like to thank Dr. Jawoo Koo of IFPRI for his review and
contributions to the software development. The authors also gratefully acknowledge additional
financial support for this work provided by the MIT Joint Program on the Science and Policy of
Global Change through a consortium of industrial sponsors and Federal grants. Development of
the IGSM applied in this research was supported by the U.S. Department of Energy, Office of
Science (DE-FG02-94ER61937); the U.S. Environmental Protection Agency, EPRI, and other
U.S. government agencies and a consortium of 40 industrial and foundation sponsors
Processing and characterisation of II-VI ZnCdMgSe thin film gain structures
Lattice-matched II-VI selenide quantum well (QW) structures grown on InP substrates can be designed for emission throughout the visible spectrum. InP has, however, strong visible-light absorption, so that a method for epitaxial lift-off and transfer to transparent substrates is desirable for vertically-integrated devices. We have designed and grown, via molecular beam epitaxy, ZnCdSe/ZnCdMgSe multi-QW gain regions for vertical emission, with the QWs positioned for resonant periodic gain. The release of the 2.7 ÎĽm-thick ZnCdSe/ZnCdMgSe multi-QW film is achieved via selective wet etching of the substrate and buffer layers leaving only the epitaxial layers, which are subsequently transferred to transparent substrates, including glass and thermally-conductive diamond. Post-transfer properties are investigated, with power and temperature-dependent surface and edge-emitting photoluminescence measurements demonstrating no observable strain relaxation effects or significant shift in comparison to unprocessed samples. The temperature dependant quantum well emission shift is found experimentally to be 0.13 nm/K. Samples capillary-bonded epitaxial-side to glass exhibited a 6 nm redshift under optical pumping of up to 35 mW at 405 nm, corresponding to a 46 K temperature increase in the pumped region; whereas those bonded to diamond exhibited no shift in quantum well emission, and thus efficient transfer of the heat from the pumped region. Atomic force microscopy analysis of the etched surface reveals a root-mean-square roughness of 3.6 nm. High quality optical interfaces are required to establish a good thermal and optical contact for high power optically pumped laser applications
Analysis of U.S. Water Resources under Climate Change
The MIT Integrated Global System Model (IGSM) framework, extended to include a Water Resource System (WRS) component, is applied to an integrated assessment of effects of alternative climate policy scenarios on U.S. water systems. Climate results are downscaled to yield estimates of surface runoff at 99 river basins of the continental U.S., with an exploration of climate patterns that are relatively wet and dry over the region. These estimates are combined with estimated groundwater supplies. An 11-region economic model (USREP) sets conditions driving water requirements estimated for five use sectors, with detailed sub-models employed for analysis of irrigation and electric power. The water system of the interconnected basins is operated to minimize water stress. Results suggest that, with or without climate change, U.S. average annual water stress is expected to increase over the period 2041 to 2050, primarily because of an increase in water requirements, with the largest water stresses projected in the South West. Policy to lower atmospheric greenhouse gas concentrations has a beneficial effect, reducing water stress intensity and variability in the concerned basins.The Joint Program on the Science and Policy of Global Change is funded by the U.S.
Department of Energy, Office of Science under grants DE-FG02-94ER61937, DE-FG02-
93ER61677, DEFG02-08ER64597, and DE-FG02-06ER64320; the U.S. Environmental
Protection Agency under grants XA-83344601-0, XA-83240101, XA-83042801-0, PI-83412601-
0, RD-83096001, and RD-83427901-0; the U.S. National Science Foundation under grants SES-
0825915, EFRI-0835414, ATM-0120468, BCS-0410344, ATM-0329759, and DMS-0426845;
the U.S. National Aeronautics and Space Administration under grants NNX07AI49G,
NNX08AY59A, NNX06AC30A, NNX09AK26G, NNX08AL73G, NNX09AI26G,
NNG04GJ80G, NNG04GP30G, and NNA06CN09A; the U.S. National Oceanic and
Atmospheric Administration under grants DG1330-05-CN-1308, NA070AR4310050, and
NA16GP2290; the U.S. Federal Aviation Administration under grant 06-C-NE-MIT; the Electric
Power Research Institute under grant EPP32616/C15124; and a consortium of 40 industrial and
foundation sponsors (for the complete list see http://globalchange.mit.edu/sponsors/current.html
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